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  <updated>2026-10-03T00:24:41.627224+00:00</updated>
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  <entry>
    <id>https://cve.radiocsirt.org/vuln/cve-2023-53024</id>
    <title>CVE-2023-53024 — bpf: Fix pointer-leak due to insufficient speculative store bypass mitigation</title>
    <updated>2026-10-03T00:24:41.642982+00:00</updated>
    <content type="xhtml">
      <div xmlns="http://www.w3.org/1999/xhtml"><p><strong>Affected:</strong> Linux</p>
<p>In the Linux kernel, the following vulnerability has been resolved:</p>
<p>bpf: Fix pointer-leak due to insufficient speculative store bypass mitigation</p>
<p>To mitigate Spectre v4, 2039f26f3aca ("bpf: Fix leakage due to
insufficient speculative store bypass mitigation") inserts lfence
instructions after 1) initializing a stack slot and 2) spilling a
pointer to the stack.</p>
<p>However, this does not cover cases where a stack slot is first
initialized with a pointer (subject to sanitization) but then
overwritten with a scalar (not subject to sanitization because
the slot was already initialized). In this case, the second write
may be subject to speculative store bypass (SSB) creating a
speculative pointer-as-scalar type confusion. This allows the
program to subsequently leak the numerical pointer value using,
for example, a branch-based cache side channel.</p>
<p>To fix this, also sanitize scalars if they write a stack slot
that previously contained a pointer. Assuming that pointer-spills
are only generated by LLVM on register-pressure, the performance
impact on most real-world BPF programs should be small.</p>
<p>The following unprivileged BPF bytecode drafts a minimal exploit
and the mitigation:</p>
<p>[...]
  // r6 = 0 or 1 (skalar, unknown user input)
  // r7 = accessible ptr for side channel
  // r10 = frame pointer (fp), to be leaked
  //
  r9 = r10 # fp alias to encourage ssb
  *(u64 *)(r9 - 8) = r10 // fp[-8] = ptr, to be leaked
  // lfence added here because of pointer spill to stack.
  //
  // O…</p></div>
    </content>
    <link href="https://cve.radiocsirt.org/vuln/cve-2023-53024"/>
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