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	Fix OOB read in SgiRleDecode.c
* From Pillow 4.3.0->8.1.0 * CVE-2021-25293
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			@ -11,6 +11,13 @@ from PIL import Image
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        "Tests/images/sgi_crash.bin",
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        "Tests/images/crash-6b7f2244da6d0ae297ee0754a424213444e92778.sgi",
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        "Tests/images/ossfuzz-5730089102868480.sgi",
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        "Tests/images/crash-754d9c7ec485ffb76a90eeaab191ef69a2a3a3cd.sgi",
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        "Tests/images/crash-465703f71a0f0094873a3e0e82c9f798161171b8.sgi",
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        "Tests/images/crash-64834657ee604b8797bf99eac6a194c124a9a8ba.sgi",
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        "Tests/images/crash-abcf1c97b8fe42a6c68f1fb0b978530c98d57ced.sgi",
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        "Tests/images/crash-b82e64d4f3f76d7465b6af535283029eda211259.sgi",
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        "Tests/images/crash-c1b2595b8b0b92cc5f38b6635e98e3a119ade807.sgi",
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        "Tests/images/crash-db8bfa78b19721225425530c5946217720d7df4e.sgi",
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    ],
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)
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def test_crashes(test_file):
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			@ -25,13 +25,59 @@ static void read4B(UINT32* dest, UINT8* buf)
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    *dest = (UINT32)((buf[0] << 24) | (buf[1] << 16) | (buf[2] << 8) | buf[3]);
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}
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static int expandrow(UINT8* dest, UINT8* src, int n, int z, int xsize)
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/*
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   SgiRleDecoding is done in a single channel row oriented set of RLE chunks.
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   * The file is arranged as
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     - SGI Header
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     - Rle Offset Table
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     - Rle Length Table
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     - Scanline Data
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   * Each RLE atom is c->bpc bytes wide (1 or 2)
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   * Each RLE Chunk is [specifier atom] [ 1 or n data atoms ]
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   * Copy Atoms are a byte with the high bit set, and the low 7 are
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     the number of bytes to copy from the source to the
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     destination. e.g.
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         CBBBBBBBB or 0CHLHLHLHLHLHL   (B=byte, H/L = Hi low bytes)
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   * Run atoms do not have the high bit set, and the low 7 bits are
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     the number of copies of the next atom to copy to the
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     destination. e.g.:
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         RB -> BBBBB or RHL -> HLHLHLHLHL
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   The upshot of this is, there is no way to determine the required
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   length of the input buffer from reloffset and rlelength without
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   going through the data at that scan line.
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   Furthermore, there's no requirement that individual scan lines
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   pointed to from the rleoffset table are in any sort of order or
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   used only once, or even disjoint. There's also no requirement that
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   all of the data in the scan line area of the image file be used
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 */
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static int expandrow(UINT8* dest, UINT8* src, int n, int z, int xsize, UINT8* end_of_buffer)
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{
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    /*
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     * n here is the number of rlechunks
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     * z is the number of channels, for calculating the interleave
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     *   offset to go to RGBA style pixels
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     * xsize is the row width
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     * end_of_buffer is the address of the end of the input buffer
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     */
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    UINT8 pixel, count;
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    int x = 0;
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    for (;n > 0; n--)
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    {
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        if (src > end_of_buffer) {
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            return -1;
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        }
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        pixel = *src++;
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        if (n == 1 && pixel != 0) {
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            return n;
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			@ -45,6 +91,9 @@ static int expandrow(UINT8* dest, UINT8* src, int n, int z, int xsize)
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        }
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        x += count;
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        if (pixel & RLE_COPY_FLAG) {
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            if (src + count > end_of_buffer) {
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                return -1;
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            }
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            while(count--) {
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                *dest = *src++;
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                dest += z;
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			@ -52,6 +101,9 @@ static int expandrow(UINT8* dest, UINT8* src, int n, int z, int xsize)
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        }
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        else {
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            if (src > end_of_buffer) {
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                return -1;
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            }
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            pixel = *src++;
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            while (count--) {
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                *dest = pixel;
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			@ -63,14 +115,16 @@ static int expandrow(UINT8* dest, UINT8* src, int n, int z, int xsize)
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    return 0;
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}
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static int expandrow2(UINT8* dest, const UINT8* src, int n, int z, int xsize)
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static int expandrow2(UINT8* dest, const UINT8* src, int n, int z, int xsize, UINT8* end_of_buffer)
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{
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    UINT8 pixel, count;
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    int x = 0;
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    for (;n > 0; n--)
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    {
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        if (src + 1 > end_of_buffer) {
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            return -1;
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        }
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        pixel = src[1];
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        src+=2;
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        if (n == 1 && pixel != 0) {
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			@ -85,6 +139,9 @@ static int expandrow2(UINT8* dest, const UINT8* src, int n, int z, int xsize)
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        }
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        x += count;
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        if (pixel & RLE_COPY_FLAG) {
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            if (src + 2 * count > end_of_buffer) {
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                return -1;
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            }
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            while(count--) {
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                memcpy(dest, src, 2);
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                src += 2;
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			@ -92,6 +149,9 @@ static int expandrow2(UINT8* dest, const UINT8* src, int n, int z, int xsize)
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            }
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        }
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        else {
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            if (src + 2 > end_of_buffer) {
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                return -1;
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            }
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            while (count--) {
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                memcpy(dest, src, 2);
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                dest += z * 2;
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			@ -141,7 +201,10 @@ ImagingSgiRleDecode(Imaging im, ImagingCodecState state,
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        return -1;
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    }
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    _imaging_seek_pyFd(state->fd, SGI_HEADER_SIZE, SEEK_SET);
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    _imaging_read_pyFd(state->fd, (char*)ptr, c->bufsize);
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    if (_imaging_read_pyFd(state->fd, (char*)ptr, c->bufsize) != c->bufsize) {
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        state->errcode = IMAGING_CODEC_UNKNOWN;
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        return -1;
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    }
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    /* decoder initialization */
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			@ -175,8 +238,6 @@ ImagingSgiRleDecode(Imaging im, ImagingCodecState state,
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        read4B(&c->lengthtab[c->tabindex], &ptr[c->bufindex]);
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    }
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    state->count += c->tablen * sizeof(UINT32) * 2;
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    /* read compressed rows */
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    for (c->rowno = 0; c->rowno < im->ysize; c->rowno++, state->y += state->ystep)
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    {
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			@ -184,19 +245,21 @@ ImagingSgiRleDecode(Imaging im, ImagingCodecState state,
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        {
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            c->rleoffset = c->starttab[c->rowno + c->channo * im->ysize];
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            c->rlelength = c->lengthtab[c->rowno + c->channo * im->ysize];
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            c->rleoffset -= SGI_HEADER_SIZE;
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            if (c->rleoffset + c->rlelength > c->bufsize) {
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            // Check for underflow of rleoffset-SGI_HEADER_SIZE
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            if (c->rleoffset < SGI_HEADER_SIZE) {
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                state->errcode = IMAGING_CODEC_OVERRUN;
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                goto sgi_finish_decode;
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            }
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            c->rleoffset -= SGI_HEADER_SIZE;
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            /* row decompression */
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            if (c->bpc ==1) {
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                status = expandrow(&state->buffer[c->channo], &ptr[c->rleoffset], c->rlelength, im->bands, im->xsize);
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                status = expandrow(&state->buffer[c->channo], &ptr[c->rleoffset], c->rlelength, im->bands, im->xsize, &ptr[c->bufsize-1]);
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            }
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            else {
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                status = expandrow2(&state->buffer[c->channo * 2], &ptr[c->rleoffset], c->rlelength, im->bands, im->xsize);
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                status = expandrow2(&state->buffer[c->channo * 2], &ptr[c->rleoffset], c->rlelength, im->bands, im->xsize, &ptr[c->bufsize-1]);
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            }
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            if (status == -1) {
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                state->errcode = IMAGING_CODEC_OVERRUN;
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			@ -205,7 +268,6 @@ ImagingSgiRleDecode(Imaging im, ImagingCodecState state,
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                goto sgi_finish_decode;
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            }
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            state->count += c->rlelength;
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        }
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        /* store decompressed data in image */
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			@ -213,8 +275,6 @@ ImagingSgiRleDecode(Imaging im, ImagingCodecState state,
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    }
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    c->bufsize++;
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sgi_finish_decode: ;
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    free(c->starttab);
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			@ -224,5 +284,5 @@ sgi_finish_decode: ;
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        state->errcode=err;
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        return -1;
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    }
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    return state->count - c->bufsize;
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    return 0;
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}
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