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When SVE is enabled, the host may set bit 16 in SMCCC function IDs, a
hint that indicates an unused SVE state. At the moment NVHE doesn't
account for this bit when inspecting the function ID, and rejects most
calls. Clear the hint bit before comparing function IDs.
About version compatibility: the host's PSCI driver initially probes the
firmware for a SMCCC version number. If the firmware implements a
protocol recent enough (1.3), subsequent SMCCC calls have the hint bit
set. Since the hint bit was reserved in earlier versions of the
protocol, clearing it is fine regardless of the version in use.
When a new hint is added to the protocol in the future, it will be added
to ARM_SMCCC_CALL_HINTS and NVHE will handle it straight away. This
patch only clears known hints and leaves reserved bits as is, because
future SMCCC versions could use reserved bits as modifiers for the
function ID, rather than hints.
Fixes: cfa7ff959a ("arm64: smccc: Support SMCCC v1.3 SVE register saving hint")
Reported-by: Ben Horgan <ben.horgan@arm.com>
Signed-off-by: Jean-Philippe Brucker <jean-philippe@linaro.org>
Signed-off-by: Marc Zyngier <maz@kernel.org>
Link: https://lore.kernel.org/r/20230911145254.934414-4-jean-philippe@linaro.org
775 lines
19 KiB
C
775 lines
19 KiB
C
// SPDX-License-Identifier: GPL-2.0-only
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/*
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* FF-A v1.0 proxy to filter out invalid memory-sharing SMC calls issued by
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* the host. FF-A is a slightly more palatable abbreviation of "Arm Firmware
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* Framework for Arm A-profile", which is specified by Arm in document
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* number DEN0077.
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*
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* Copyright (C) 2022 - Google LLC
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* Author: Andrew Walbran <qwandor@google.com>
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*
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* This driver hooks into the SMC trapping logic for the host and intercepts
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* all calls falling within the FF-A range. Each call is either:
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*
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* - Forwarded on unmodified to the SPMD at EL3
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* - Rejected as "unsupported"
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* - Accompanied by a host stage-2 page-table check/update and reissued
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*
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* Consequently, any attempts by the host to make guest memory pages
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* accessible to the secure world using FF-A will be detected either here
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* (in the case that the memory is already owned by the guest) or during
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* donation to the guest (in the case that the memory was previously shared
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* with the secure world).
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*
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* To allow the rolling-back of page-table updates and FF-A calls in the
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* event of failure, operations involving the RXTX buffers are locked for
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* the duration and are therefore serialised.
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*/
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#include <linux/arm-smccc.h>
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#include <linux/arm_ffa.h>
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#include <asm/kvm_pkvm.h>
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#include <nvhe/ffa.h>
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#include <nvhe/mem_protect.h>
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#include <nvhe/memory.h>
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#include <nvhe/trap_handler.h>
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#include <nvhe/spinlock.h>
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/*
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* "ID value 0 must be returned at the Non-secure physical FF-A instance"
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* We share this ID with the host.
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*/
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#define HOST_FFA_ID 0
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/*
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* A buffer to hold the maximum descriptor size we can see from the host,
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* which is required when the SPMD returns a fragmented FFA_MEM_RETRIEVE_RESP
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* when resolving the handle on the reclaim path.
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*/
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struct kvm_ffa_descriptor_buffer {
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void *buf;
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size_t len;
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};
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static struct kvm_ffa_descriptor_buffer ffa_desc_buf;
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struct kvm_ffa_buffers {
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hyp_spinlock_t lock;
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void *tx;
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void *rx;
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};
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/*
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* Note that we don't currently lock these buffers explicitly, instead
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* relying on the locking of the host FFA buffers as we only have one
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* client.
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*/
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static struct kvm_ffa_buffers hyp_buffers;
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static struct kvm_ffa_buffers host_buffers;
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static void ffa_to_smccc_error(struct arm_smccc_res *res, u64 ffa_errno)
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{
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*res = (struct arm_smccc_res) {
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.a0 = FFA_ERROR,
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.a2 = ffa_errno,
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};
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}
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static void ffa_to_smccc_res_prop(struct arm_smccc_res *res, int ret, u64 prop)
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{
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if (ret == FFA_RET_SUCCESS) {
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*res = (struct arm_smccc_res) { .a0 = FFA_SUCCESS,
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.a2 = prop };
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} else {
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ffa_to_smccc_error(res, ret);
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}
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}
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static void ffa_to_smccc_res(struct arm_smccc_res *res, int ret)
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{
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ffa_to_smccc_res_prop(res, ret, 0);
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}
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static void ffa_set_retval(struct kvm_cpu_context *ctxt,
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struct arm_smccc_res *res)
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{
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cpu_reg(ctxt, 0) = res->a0;
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cpu_reg(ctxt, 1) = res->a1;
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cpu_reg(ctxt, 2) = res->a2;
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cpu_reg(ctxt, 3) = res->a3;
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}
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static bool is_ffa_call(u64 func_id)
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{
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return ARM_SMCCC_IS_FAST_CALL(func_id) &&
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ARM_SMCCC_OWNER_NUM(func_id) == ARM_SMCCC_OWNER_STANDARD &&
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ARM_SMCCC_FUNC_NUM(func_id) >= FFA_MIN_FUNC_NUM &&
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ARM_SMCCC_FUNC_NUM(func_id) <= FFA_MAX_FUNC_NUM;
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}
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static int ffa_map_hyp_buffers(u64 ffa_page_count)
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{
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struct arm_smccc_res res;
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arm_smccc_1_1_smc(FFA_FN64_RXTX_MAP,
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hyp_virt_to_phys(hyp_buffers.tx),
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hyp_virt_to_phys(hyp_buffers.rx),
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ffa_page_count,
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0, 0, 0, 0,
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&res);
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return res.a0 == FFA_SUCCESS ? FFA_RET_SUCCESS : res.a2;
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}
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static int ffa_unmap_hyp_buffers(void)
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{
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struct arm_smccc_res res;
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arm_smccc_1_1_smc(FFA_RXTX_UNMAP,
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HOST_FFA_ID,
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0, 0, 0, 0, 0, 0,
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&res);
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return res.a0 == FFA_SUCCESS ? FFA_RET_SUCCESS : res.a2;
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}
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static void ffa_mem_frag_tx(struct arm_smccc_res *res, u32 handle_lo,
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u32 handle_hi, u32 fraglen, u32 endpoint_id)
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{
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arm_smccc_1_1_smc(FFA_MEM_FRAG_TX,
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handle_lo, handle_hi, fraglen, endpoint_id,
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0, 0, 0,
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res);
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}
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static void ffa_mem_frag_rx(struct arm_smccc_res *res, u32 handle_lo,
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u32 handle_hi, u32 fragoff)
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{
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arm_smccc_1_1_smc(FFA_MEM_FRAG_RX,
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handle_lo, handle_hi, fragoff, HOST_FFA_ID,
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0, 0, 0,
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res);
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}
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static void ffa_mem_xfer(struct arm_smccc_res *res, u64 func_id, u32 len,
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u32 fraglen)
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{
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arm_smccc_1_1_smc(func_id, len, fraglen,
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0, 0, 0, 0, 0,
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res);
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}
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static void ffa_mem_reclaim(struct arm_smccc_res *res, u32 handle_lo,
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u32 handle_hi, u32 flags)
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{
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arm_smccc_1_1_smc(FFA_MEM_RECLAIM,
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handle_lo, handle_hi, flags,
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0, 0, 0, 0,
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res);
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}
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static void ffa_retrieve_req(struct arm_smccc_res *res, u32 len)
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{
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arm_smccc_1_1_smc(FFA_FN64_MEM_RETRIEVE_REQ,
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len, len,
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0, 0, 0, 0, 0,
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res);
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}
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static void do_ffa_rxtx_map(struct arm_smccc_res *res,
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struct kvm_cpu_context *ctxt)
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{
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DECLARE_REG(phys_addr_t, tx, ctxt, 1);
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DECLARE_REG(phys_addr_t, rx, ctxt, 2);
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DECLARE_REG(u32, npages, ctxt, 3);
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int ret = 0;
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void *rx_virt, *tx_virt;
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if (npages != (KVM_FFA_MBOX_NR_PAGES * PAGE_SIZE) / FFA_PAGE_SIZE) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out;
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}
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if (!PAGE_ALIGNED(tx) || !PAGE_ALIGNED(rx)) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out;
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}
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hyp_spin_lock(&host_buffers.lock);
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if (host_buffers.tx) {
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ret = FFA_RET_DENIED;
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goto out_unlock;
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}
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/*
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* Map our hypervisor buffers into the SPMD before mapping and
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* pinning the host buffers in our own address space.
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*/
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ret = ffa_map_hyp_buffers(npages);
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if (ret)
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goto out_unlock;
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ret = __pkvm_host_share_hyp(hyp_phys_to_pfn(tx));
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if (ret) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto err_unmap;
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}
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ret = __pkvm_host_share_hyp(hyp_phys_to_pfn(rx));
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if (ret) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto err_unshare_tx;
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}
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tx_virt = hyp_phys_to_virt(tx);
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ret = hyp_pin_shared_mem(tx_virt, tx_virt + 1);
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if (ret) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto err_unshare_rx;
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}
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rx_virt = hyp_phys_to_virt(rx);
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ret = hyp_pin_shared_mem(rx_virt, rx_virt + 1);
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if (ret) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto err_unpin_tx;
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}
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host_buffers.tx = tx_virt;
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host_buffers.rx = rx_virt;
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out_unlock:
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hyp_spin_unlock(&host_buffers.lock);
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out:
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ffa_to_smccc_res(res, ret);
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return;
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err_unpin_tx:
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hyp_unpin_shared_mem(tx_virt, tx_virt + 1);
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err_unshare_rx:
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__pkvm_host_unshare_hyp(hyp_phys_to_pfn(rx));
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err_unshare_tx:
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__pkvm_host_unshare_hyp(hyp_phys_to_pfn(tx));
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err_unmap:
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ffa_unmap_hyp_buffers();
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goto out_unlock;
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}
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static void do_ffa_rxtx_unmap(struct arm_smccc_res *res,
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struct kvm_cpu_context *ctxt)
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{
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DECLARE_REG(u32, id, ctxt, 1);
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int ret = 0;
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if (id != HOST_FFA_ID) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out;
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}
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hyp_spin_lock(&host_buffers.lock);
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if (!host_buffers.tx) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out_unlock;
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}
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hyp_unpin_shared_mem(host_buffers.tx, host_buffers.tx + 1);
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WARN_ON(__pkvm_host_unshare_hyp(hyp_virt_to_pfn(host_buffers.tx)));
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host_buffers.tx = NULL;
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hyp_unpin_shared_mem(host_buffers.rx, host_buffers.rx + 1);
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WARN_ON(__pkvm_host_unshare_hyp(hyp_virt_to_pfn(host_buffers.rx)));
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host_buffers.rx = NULL;
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ffa_unmap_hyp_buffers();
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out_unlock:
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hyp_spin_unlock(&host_buffers.lock);
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out:
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ffa_to_smccc_res(res, ret);
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}
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static u32 __ffa_host_share_ranges(struct ffa_mem_region_addr_range *ranges,
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u32 nranges)
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{
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u32 i;
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for (i = 0; i < nranges; ++i) {
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struct ffa_mem_region_addr_range *range = &ranges[i];
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u64 sz = (u64)range->pg_cnt * FFA_PAGE_SIZE;
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u64 pfn = hyp_phys_to_pfn(range->address);
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if (!PAGE_ALIGNED(sz))
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break;
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if (__pkvm_host_share_ffa(pfn, sz / PAGE_SIZE))
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break;
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}
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return i;
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}
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static u32 __ffa_host_unshare_ranges(struct ffa_mem_region_addr_range *ranges,
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u32 nranges)
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{
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u32 i;
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for (i = 0; i < nranges; ++i) {
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struct ffa_mem_region_addr_range *range = &ranges[i];
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u64 sz = (u64)range->pg_cnt * FFA_PAGE_SIZE;
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u64 pfn = hyp_phys_to_pfn(range->address);
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if (!PAGE_ALIGNED(sz))
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break;
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if (__pkvm_host_unshare_ffa(pfn, sz / PAGE_SIZE))
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break;
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}
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return i;
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}
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static int ffa_host_share_ranges(struct ffa_mem_region_addr_range *ranges,
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u32 nranges)
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{
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u32 nshared = __ffa_host_share_ranges(ranges, nranges);
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int ret = 0;
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if (nshared != nranges) {
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WARN_ON(__ffa_host_unshare_ranges(ranges, nshared) != nshared);
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ret = FFA_RET_DENIED;
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}
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return ret;
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}
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static int ffa_host_unshare_ranges(struct ffa_mem_region_addr_range *ranges,
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u32 nranges)
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{
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u32 nunshared = __ffa_host_unshare_ranges(ranges, nranges);
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int ret = 0;
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if (nunshared != nranges) {
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WARN_ON(__ffa_host_share_ranges(ranges, nunshared) != nunshared);
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ret = FFA_RET_DENIED;
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}
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return ret;
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}
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static void do_ffa_mem_frag_tx(struct arm_smccc_res *res,
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struct kvm_cpu_context *ctxt)
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{
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DECLARE_REG(u32, handle_lo, ctxt, 1);
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DECLARE_REG(u32, handle_hi, ctxt, 2);
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DECLARE_REG(u32, fraglen, ctxt, 3);
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DECLARE_REG(u32, endpoint_id, ctxt, 4);
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struct ffa_mem_region_addr_range *buf;
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int ret = FFA_RET_INVALID_PARAMETERS;
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u32 nr_ranges;
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if (fraglen > KVM_FFA_MBOX_NR_PAGES * PAGE_SIZE)
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goto out;
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if (fraglen % sizeof(*buf))
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goto out;
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hyp_spin_lock(&host_buffers.lock);
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if (!host_buffers.tx)
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goto out_unlock;
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buf = hyp_buffers.tx;
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memcpy(buf, host_buffers.tx, fraglen);
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nr_ranges = fraglen / sizeof(*buf);
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ret = ffa_host_share_ranges(buf, nr_ranges);
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if (ret) {
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/*
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* We're effectively aborting the transaction, so we need
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* to restore the global state back to what it was prior to
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* transmission of the first fragment.
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*/
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ffa_mem_reclaim(res, handle_lo, handle_hi, 0);
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WARN_ON(res->a0 != FFA_SUCCESS);
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goto out_unlock;
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}
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ffa_mem_frag_tx(res, handle_lo, handle_hi, fraglen, endpoint_id);
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if (res->a0 != FFA_SUCCESS && res->a0 != FFA_MEM_FRAG_RX)
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WARN_ON(ffa_host_unshare_ranges(buf, nr_ranges));
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out_unlock:
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hyp_spin_unlock(&host_buffers.lock);
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out:
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if (ret)
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ffa_to_smccc_res(res, ret);
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/*
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* If for any reason this did not succeed, we're in trouble as we have
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* now lost the content of the previous fragments and we can't rollback
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* the host stage-2 changes. The pages previously marked as shared will
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* remain stuck in that state forever, hence preventing the host from
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* sharing/donating them again and may possibly lead to subsequent
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* failures, but this will not compromise confidentiality.
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*/
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return;
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}
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static __always_inline void do_ffa_mem_xfer(const u64 func_id,
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struct arm_smccc_res *res,
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struct kvm_cpu_context *ctxt)
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{
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DECLARE_REG(u32, len, ctxt, 1);
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DECLARE_REG(u32, fraglen, ctxt, 2);
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DECLARE_REG(u64, addr_mbz, ctxt, 3);
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DECLARE_REG(u32, npages_mbz, ctxt, 4);
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struct ffa_composite_mem_region *reg;
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struct ffa_mem_region *buf;
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u32 offset, nr_ranges;
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int ret = 0;
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BUILD_BUG_ON(func_id != FFA_FN64_MEM_SHARE &&
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func_id != FFA_FN64_MEM_LEND);
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if (addr_mbz || npages_mbz || fraglen > len ||
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fraglen > KVM_FFA_MBOX_NR_PAGES * PAGE_SIZE) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out;
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}
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if (fraglen < sizeof(struct ffa_mem_region) +
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sizeof(struct ffa_mem_region_attributes)) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out;
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}
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hyp_spin_lock(&host_buffers.lock);
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if (!host_buffers.tx) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out_unlock;
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}
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buf = hyp_buffers.tx;
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memcpy(buf, host_buffers.tx, fraglen);
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offset = buf->ep_mem_access[0].composite_off;
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if (!offset || buf->ep_count != 1 || buf->sender_id != HOST_FFA_ID) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out_unlock;
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}
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if (fraglen < offset + sizeof(struct ffa_composite_mem_region)) {
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ret = FFA_RET_INVALID_PARAMETERS;
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goto out_unlock;
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}
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reg = (void *)buf + offset;
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nr_ranges = ((void *)buf + fraglen) - (void *)reg->constituents;
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if (nr_ranges % sizeof(reg->constituents[0])) {
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ret = FFA_RET_INVALID_PARAMETERS;
|
|
goto out_unlock;
|
|
}
|
|
|
|
nr_ranges /= sizeof(reg->constituents[0]);
|
|
ret = ffa_host_share_ranges(reg->constituents, nr_ranges);
|
|
if (ret)
|
|
goto out_unlock;
|
|
|
|
ffa_mem_xfer(res, func_id, len, fraglen);
|
|
if (fraglen != len) {
|
|
if (res->a0 != FFA_MEM_FRAG_RX)
|
|
goto err_unshare;
|
|
|
|
if (res->a3 != fraglen)
|
|
goto err_unshare;
|
|
} else if (res->a0 != FFA_SUCCESS) {
|
|
goto err_unshare;
|
|
}
|
|
|
|
out_unlock:
|
|
hyp_spin_unlock(&host_buffers.lock);
|
|
out:
|
|
if (ret)
|
|
ffa_to_smccc_res(res, ret);
|
|
return;
|
|
|
|
err_unshare:
|
|
WARN_ON(ffa_host_unshare_ranges(reg->constituents, nr_ranges));
|
|
goto out_unlock;
|
|
}
|
|
|
|
static void do_ffa_mem_reclaim(struct arm_smccc_res *res,
|
|
struct kvm_cpu_context *ctxt)
|
|
{
|
|
DECLARE_REG(u32, handle_lo, ctxt, 1);
|
|
DECLARE_REG(u32, handle_hi, ctxt, 2);
|
|
DECLARE_REG(u32, flags, ctxt, 3);
|
|
struct ffa_composite_mem_region *reg;
|
|
u32 offset, len, fraglen, fragoff;
|
|
struct ffa_mem_region *buf;
|
|
int ret = 0;
|
|
u64 handle;
|
|
|
|
handle = PACK_HANDLE(handle_lo, handle_hi);
|
|
|
|
hyp_spin_lock(&host_buffers.lock);
|
|
|
|
buf = hyp_buffers.tx;
|
|
*buf = (struct ffa_mem_region) {
|
|
.sender_id = HOST_FFA_ID,
|
|
.handle = handle,
|
|
};
|
|
|
|
ffa_retrieve_req(res, sizeof(*buf));
|
|
buf = hyp_buffers.rx;
|
|
if (res->a0 != FFA_MEM_RETRIEVE_RESP)
|
|
goto out_unlock;
|
|
|
|
len = res->a1;
|
|
fraglen = res->a2;
|
|
|
|
offset = buf->ep_mem_access[0].composite_off;
|
|
/*
|
|
* We can trust the SPMD to get this right, but let's at least
|
|
* check that we end up with something that doesn't look _completely_
|
|
* bogus.
|
|
*/
|
|
if (WARN_ON(offset > len ||
|
|
fraglen > KVM_FFA_MBOX_NR_PAGES * PAGE_SIZE)) {
|
|
ret = FFA_RET_ABORTED;
|
|
goto out_unlock;
|
|
}
|
|
|
|
if (len > ffa_desc_buf.len) {
|
|
ret = FFA_RET_NO_MEMORY;
|
|
goto out_unlock;
|
|
}
|
|
|
|
buf = ffa_desc_buf.buf;
|
|
memcpy(buf, hyp_buffers.rx, fraglen);
|
|
|
|
for (fragoff = fraglen; fragoff < len; fragoff += fraglen) {
|
|
ffa_mem_frag_rx(res, handle_lo, handle_hi, fragoff);
|
|
if (res->a0 != FFA_MEM_FRAG_TX) {
|
|
ret = FFA_RET_INVALID_PARAMETERS;
|
|
goto out_unlock;
|
|
}
|
|
|
|
fraglen = res->a3;
|
|
memcpy((void *)buf + fragoff, hyp_buffers.rx, fraglen);
|
|
}
|
|
|
|
ffa_mem_reclaim(res, handle_lo, handle_hi, flags);
|
|
if (res->a0 != FFA_SUCCESS)
|
|
goto out_unlock;
|
|
|
|
reg = (void *)buf + offset;
|
|
/* If the SPMD was happy, then we should be too. */
|
|
WARN_ON(ffa_host_unshare_ranges(reg->constituents,
|
|
reg->addr_range_cnt));
|
|
out_unlock:
|
|
hyp_spin_unlock(&host_buffers.lock);
|
|
|
|
if (ret)
|
|
ffa_to_smccc_res(res, ret);
|
|
}
|
|
|
|
/*
|
|
* Is a given FFA function supported, either by forwarding on directly
|
|
* or by handling at EL2?
|
|
*/
|
|
static bool ffa_call_supported(u64 func_id)
|
|
{
|
|
switch (func_id) {
|
|
/* Unsupported memory management calls */
|
|
case FFA_FN64_MEM_RETRIEVE_REQ:
|
|
case FFA_MEM_RETRIEVE_RESP:
|
|
case FFA_MEM_RELINQUISH:
|
|
case FFA_MEM_OP_PAUSE:
|
|
case FFA_MEM_OP_RESUME:
|
|
case FFA_MEM_FRAG_RX:
|
|
case FFA_FN64_MEM_DONATE:
|
|
/* Indirect message passing via RX/TX buffers */
|
|
case FFA_MSG_SEND:
|
|
case FFA_MSG_POLL:
|
|
case FFA_MSG_WAIT:
|
|
/* 32-bit variants of 64-bit calls */
|
|
case FFA_MSG_SEND_DIRECT_REQ:
|
|
case FFA_MSG_SEND_DIRECT_RESP:
|
|
case FFA_RXTX_MAP:
|
|
case FFA_MEM_DONATE:
|
|
case FFA_MEM_RETRIEVE_REQ:
|
|
return false;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
static bool do_ffa_features(struct arm_smccc_res *res,
|
|
struct kvm_cpu_context *ctxt)
|
|
{
|
|
DECLARE_REG(u32, id, ctxt, 1);
|
|
u64 prop = 0;
|
|
int ret = 0;
|
|
|
|
if (!ffa_call_supported(id)) {
|
|
ret = FFA_RET_NOT_SUPPORTED;
|
|
goto out_handled;
|
|
}
|
|
|
|
switch (id) {
|
|
case FFA_MEM_SHARE:
|
|
case FFA_FN64_MEM_SHARE:
|
|
case FFA_MEM_LEND:
|
|
case FFA_FN64_MEM_LEND:
|
|
ret = FFA_RET_SUCCESS;
|
|
prop = 0; /* No support for dynamic buffers */
|
|
goto out_handled;
|
|
default:
|
|
return false;
|
|
}
|
|
|
|
out_handled:
|
|
ffa_to_smccc_res_prop(res, ret, prop);
|
|
return true;
|
|
}
|
|
|
|
bool kvm_host_ffa_handler(struct kvm_cpu_context *host_ctxt, u32 func_id)
|
|
{
|
|
struct arm_smccc_res res;
|
|
|
|
/*
|
|
* There's no way we can tell what a non-standard SMC call might
|
|
* be up to. Ideally, we would terminate these here and return
|
|
* an error to the host, but sadly devices make use of custom
|
|
* firmware calls for things like power management, debugging,
|
|
* RNG access and crash reporting.
|
|
*
|
|
* Given that the architecture requires us to trust EL3 anyway,
|
|
* we forward unrecognised calls on under the assumption that
|
|
* the firmware doesn't expose a mechanism to access arbitrary
|
|
* non-secure memory. Short of a per-device table of SMCs, this
|
|
* is the best we can do.
|
|
*/
|
|
if (!is_ffa_call(func_id))
|
|
return false;
|
|
|
|
switch (func_id) {
|
|
case FFA_FEATURES:
|
|
if (!do_ffa_features(&res, host_ctxt))
|
|
return false;
|
|
goto out_handled;
|
|
/* Memory management */
|
|
case FFA_FN64_RXTX_MAP:
|
|
do_ffa_rxtx_map(&res, host_ctxt);
|
|
goto out_handled;
|
|
case FFA_RXTX_UNMAP:
|
|
do_ffa_rxtx_unmap(&res, host_ctxt);
|
|
goto out_handled;
|
|
case FFA_MEM_SHARE:
|
|
case FFA_FN64_MEM_SHARE:
|
|
do_ffa_mem_xfer(FFA_FN64_MEM_SHARE, &res, host_ctxt);
|
|
goto out_handled;
|
|
case FFA_MEM_RECLAIM:
|
|
do_ffa_mem_reclaim(&res, host_ctxt);
|
|
goto out_handled;
|
|
case FFA_MEM_LEND:
|
|
case FFA_FN64_MEM_LEND:
|
|
do_ffa_mem_xfer(FFA_FN64_MEM_LEND, &res, host_ctxt);
|
|
goto out_handled;
|
|
case FFA_MEM_FRAG_TX:
|
|
do_ffa_mem_frag_tx(&res, host_ctxt);
|
|
goto out_handled;
|
|
}
|
|
|
|
if (ffa_call_supported(func_id))
|
|
return false; /* Pass through */
|
|
|
|
ffa_to_smccc_error(&res, FFA_RET_NOT_SUPPORTED);
|
|
out_handled:
|
|
ffa_set_retval(host_ctxt, &res);
|
|
return true;
|
|
}
|
|
|
|
int hyp_ffa_init(void *pages)
|
|
{
|
|
struct arm_smccc_res res;
|
|
size_t min_rxtx_sz;
|
|
void *tx, *rx;
|
|
|
|
if (kvm_host_psci_config.smccc_version < ARM_SMCCC_VERSION_1_2)
|
|
return 0;
|
|
|
|
arm_smccc_1_1_smc(FFA_VERSION, FFA_VERSION_1_0, 0, 0, 0, 0, 0, 0, &res);
|
|
if (res.a0 == FFA_RET_NOT_SUPPORTED)
|
|
return 0;
|
|
|
|
/*
|
|
* Firmware returns the maximum supported version of the FF-A
|
|
* implementation. Check that the returned version is
|
|
* backwards-compatible with the hyp according to the rules in DEN0077A
|
|
* v1.1 REL0 13.2.1.
|
|
*
|
|
* Of course, things are never simple when dealing with firmware. v1.1
|
|
* broke ABI with v1.0 on several structures, which is itself
|
|
* incompatible with the aforementioned versioning scheme. The
|
|
* expectation is that v1.x implementations that do not support the v1.0
|
|
* ABI return NOT_SUPPORTED rather than a version number, according to
|
|
* DEN0077A v1.1 REL0 18.6.4.
|
|
*/
|
|
if (FFA_MAJOR_VERSION(res.a0) != 1)
|
|
return -EOPNOTSUPP;
|
|
|
|
arm_smccc_1_1_smc(FFA_ID_GET, 0, 0, 0, 0, 0, 0, 0, &res);
|
|
if (res.a0 != FFA_SUCCESS)
|
|
return -EOPNOTSUPP;
|
|
|
|
if (res.a2 != HOST_FFA_ID)
|
|
return -EINVAL;
|
|
|
|
arm_smccc_1_1_smc(FFA_FEATURES, FFA_FN64_RXTX_MAP,
|
|
0, 0, 0, 0, 0, 0, &res);
|
|
if (res.a0 != FFA_SUCCESS)
|
|
return -EOPNOTSUPP;
|
|
|
|
switch (res.a2) {
|
|
case FFA_FEAT_RXTX_MIN_SZ_4K:
|
|
min_rxtx_sz = SZ_4K;
|
|
break;
|
|
case FFA_FEAT_RXTX_MIN_SZ_16K:
|
|
min_rxtx_sz = SZ_16K;
|
|
break;
|
|
case FFA_FEAT_RXTX_MIN_SZ_64K:
|
|
min_rxtx_sz = SZ_64K;
|
|
break;
|
|
default:
|
|
return -EINVAL;
|
|
}
|
|
|
|
if (min_rxtx_sz > PAGE_SIZE)
|
|
return -EOPNOTSUPP;
|
|
|
|
tx = pages;
|
|
pages += KVM_FFA_MBOX_NR_PAGES * PAGE_SIZE;
|
|
rx = pages;
|
|
pages += KVM_FFA_MBOX_NR_PAGES * PAGE_SIZE;
|
|
|
|
ffa_desc_buf = (struct kvm_ffa_descriptor_buffer) {
|
|
.buf = pages,
|
|
.len = PAGE_SIZE *
|
|
(hyp_ffa_proxy_pages() - (2 * KVM_FFA_MBOX_NR_PAGES)),
|
|
};
|
|
|
|
hyp_buffers = (struct kvm_ffa_buffers) {
|
|
.lock = __HYP_SPIN_LOCK_UNLOCKED,
|
|
.tx = tx,
|
|
.rx = rx,
|
|
};
|
|
|
|
host_buffers = (struct kvm_ffa_buffers) {
|
|
.lock = __HYP_SPIN_LOCK_UNLOCKED,
|
|
};
|
|
|
|
return 0;
|
|
}
|