These changes should NOT affect other (non-Windows) targets I used https://github.com/jj1bdx/infnoise-windows as a reference point for getting this working (and for the idea to not directly include FTDI source files here but instead direct the user to install them).
337 lines
11 KiB
C
337 lines
11 KiB
C
/* Driver for the Infinite Noise Multiplier USB stick */
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// Required to include clock_gettime
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#define _POSIX_C_SOURCE 200809L
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#include <stdlib.h>
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#include <share.h>
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#include <stdint.h>
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#include <stdbool.h>
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#include <stdio.h>
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#include <string.h>
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#include <time.h>
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#include <fcntl.h>
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#include <io.h>
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#pragma warning(push) // Suppress -W4 `warning C4214: nonstandard extension used: bit field types other than int` in ftd2xx.h::_FTDCB
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#pragma warning(disable : 4214)
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#include "VisualStudio\ftdi\ftd2xx.h"
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#pragma warning(pop)
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#include "infnoise.h"
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#include "libinfnoise_private.h"
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#include "Keccak\KeccakF-1600-interface.h"
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// Convert an address value 0 to 15 to an 8-bit value using ADDR0 .. ADDR3.
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static uint8_t makeAddress(uint8_t addr) {
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uint8_t value = 0;
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if(addr & 1) {
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value |= 1 << ADDR0;
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}
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if(addr & 2) {
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value |= 1 << ADDR1;
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}
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if(addr & 4) {
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value |= 1 << ADDR2;
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}
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if(addr & 8) {
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value |= 1 << ADDR3;
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}
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return value;
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}
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// Extract a value form 0 to 15 from the ADDR0 .. ADDR3 bits.
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static uint8_t extractAddress(uint8_t value) {
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uint8_t addr = 0;
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if(value & (1 << ADDR0)) {
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addr |= 1;
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}
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if(value & (1 << ADDR1)) {
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addr |= 2;
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}
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if(value & (1 << ADDR2)) {
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addr |= 4;
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}
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if(value & (1 << ADDR3)) {
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addr |= 8;
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}
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return addr;
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}
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// Extract the INM output from the data received. Basically, either COMP1 or COMP2
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// changes, not both, so alternate reading bits from them. We get 1 INM bit of output
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// per byte read. Feed bits from the INM to the health checker. Return the expected
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// bits of entropy.
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static uint32_t extractBytes(uint8_t *bytes, uint8_t *inBuf, bool raw) {
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if (raw) {
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// We don't currently using `raw` in here
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}
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inmClearEntropyLevel();
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//printf("New batch\n");
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uint32_t i;
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for(i = 0; i < BUFLEN/8; i++) {
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uint32_t j;
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uint8_t byte = 0;
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for(j = 0; j < 8; j++) {
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//printf("%x ", inBuf[i*8 + j] & ~MASK);
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uint8_t val = inBuf[i*8 + j];
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uint8_t evenBit = (val >> COMP2) & 1;
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uint8_t oddBit = (val >> COMP1) & 1;
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bool even = j & 1; // Use the even bit if j is odd
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uint8_t bit = even? oddBit : evenBit;
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byte = (byte << 1) | bit;
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// This is a good place to feed the bit from the INM to the health checker.
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uint8_t addr = extractAddress(val);
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if(!inmHealthCheckAddBit(evenBit, oddBit, even)) {
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fputs("Health check of Infinite Noise Multiplier failed!\n", stderr);
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fprintf(stderr, "Address: %u, adding evenBit:%u oddBit:%u even:%u\n", addr, evenBit, oddBit, even);
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exit(1);
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}
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}
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//printf("extracted byte:%x\n", byte);
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bytes[i] = byte;
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}
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return inmGetEntropyLevel();
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}
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// Write the bytes to either stdout, or /dev/random. Use the lower of the measured
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// entropy and the provable lower bound on average entropy.
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static void outputBytes(FILE* outFile, uint8_t *bytes, uint32_t length, uint32_t entropy, bool writeDevRandom) {
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if(entropy > inmExpectedEntropyPerBit*BUFLEN/INM_ACCURACY) {
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entropy = (uint32_t)(inmExpectedEntropyPerBit*BUFLEN/INM_ACCURACY);
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}
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if(!writeDevRandom) {
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if(fwrite(bytes, 1, length, outFile) != length) {
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fputs("Unable to write output from Infinite Noise Multiplier\n", stderr);
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exit(1);
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}
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fflush(outFile);
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} else {
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fprintf(stderr, "/dev/random not supported in Windows");
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exit(1);
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}
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}
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// Whiten the output, if requested, with a Keccak sponge. Output bytes only if the health
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// checker says it's OK. Using outputMultiplier > 1 is a nice way to generate a lot more
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// cryptographically secure pseudo-random data than the INM generates. This allows a user
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// to generate hundreds of MiB per second if needed, for use as cryptogrpahic keys.
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static void processBytes(FILE* outFile, uint8_t *keccakState, uint8_t *bytes, uint32_t entropy, bool raw,
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bool writeDevRandom, uint32_t outputMultiplier) {
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if(raw) {
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// In raw mode, we just output raw data from the INM.
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outputBytes(outFile, bytes, BUFLEN/8, entropy, writeDevRandom);
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return;
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}
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// Note that BUFLEN has to be less than 1600 by enough to make the sponge secure,
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// since outputting all 1600 bits would tell an attacker the Keccak state, allowing
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// him to predict any further output, when outputMultiplier > 1, until the next call
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// to processBytes. All 512 bits are absorbed before sqeezing data out to insure that
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// we instantly recover (reseed) from a state compromise, which is when an attacker
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// gets a snapshot of the keccak state. BUFLEN must be a multiple of 64, since
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// Keccak-1600 uses 64-bit "lanes".
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KeccakAbsorb(keccakState, bytes, BUFLEN/64);
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uint8_t dataOut[16*8];
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while(outputMultiplier > 0) {
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// Write up to 1024 bits at a time.
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uint32_t numLanes = 16;
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if(outputMultiplier < 4) {
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numLanes = outputMultiplier*4;
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}
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KeccakExtract(keccakState, dataOut, numLanes);
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// Extract does not do a permute, so do it here.
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KeccakPermutation(keccakState);
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uint32_t entropyThisTime = entropy;
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if(entropyThisTime > numLanes*64) {
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entropyThisTime = numLanes*64;
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}
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outputBytes(outFile, dataOut, numLanes*8, entropyThisTime, writeDevRandom);
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outputMultiplier -= numLanes/4;
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entropy -= entropyThisTime;
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}
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}
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// Initialize the Infinite Noise Multiplier USB ineterface.
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static bool initializeUSB(FT_HANDLE *ftdic, char **message) {
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*message = NULL;
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// Open FTDI device based on FT240X vendor & product IDs
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if (FT_Open(0, ftdic) != FT_OK) {
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*message = "Can't find Infinite Noise Multiplier\n";
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return false;
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}
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// Set high baud rate
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if (FT_SetBaudRate(*ftdic, 30000) != FT_OK) {
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*message = "Setting baud rate failed\n";
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return false;
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}
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// Enable syncrhonous bitbang mode
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if (FT_SetBitMode(*ftdic, MASK, BITMODE_SYNCBB) != FT_OK) {
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*message = "Can't enable bit-bang mode\n";
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return false;
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}
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// Just test to see that we can write and read.
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uint8_t buf[64] = {0,};
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DWORD bytesWritten;
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if(FT_Write(*ftdic, buf, 64, &bytesWritten) != FT_OK || bytesWritten != 64) {
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*message = "USB write failed\n";
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return false;
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}
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DWORD bytesRead;
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if(FT_Read(*ftdic, buf, 64, &bytesRead) != FT_OK || bytesRead != 64) {
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*message = "USB read failed\n";
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return false;
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}
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return true;
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}
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/*
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// Return the difference in the times as a double in microseconds.
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static double diffTime(struct timespec *start, struct timespec *end) {
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uint32_t seconds = end->tv_sec - start->tv_sec;
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int32_t nanoseconds = end->tv_nsec - start->tv_nsec;
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return seconds*1e6 + nanoseconds/1000.0;
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}
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*/
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int main(int argc, char **argv)
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{
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FT_HANDLE ftdic;
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bool raw = false;
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bool debug = false;
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bool writeDevRandom = false;
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bool noOutput = false;
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char* outFileName = NULL;
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uint32_t outputMultiplier = 2;
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int xArg;
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// Process arguments
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for(xArg = 1; xArg < argc; xArg++) {
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if(!strcmp(argv[xArg], "--raw")) {
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raw = true;
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} else if(!strcmp(argv[xArg], "--debug")) {
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debug = true;
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} else if(!strcmp(argv[xArg], "--dev-random")) {
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writeDevRandom = true;
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} else if(!strcmp(argv[xArg], "--no-output")) {
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noOutput = true;
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} else if(!strcmp(argv[xArg], "--multiplier") && xArg+1 < argc) {
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xArg++;
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outputMultiplier = atoi(argv[xArg]);
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if(outputMultiplier == 0) {
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fputs("Multiplier must be > 0\n", stderr);
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return 1;
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}
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} else if(!strcmp(argv[xArg], "--help") || !strcmp(argv[xArg], "--?") || xArg < argc-1) {
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// Got a help option or something unexpected that's not the final arg
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fputs(
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"Usage: infnoise [options] [outFile]\n"
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"Options are:\n"
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" --debug - turn on some debug output\n"
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" --dev-random - write entropy to /dev/random instead of stdout\n"
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" --raw - do not whiten the output\n"
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" --multiplier <value> - write 256 bits * value for each 512 bits written to\n"
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" the Keccak sponge\n"
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" --no-output - do not write random output data\n", stderr);
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return 1;
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}
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else {
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// Final unparsed arg == output file specified
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outFileName = argv[xArg];
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}
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}
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FILE* outFile;
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if (outFileName) {
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outFile = _fsopen(outFileName, "wb", _SH_DENYWR);
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if (!outFile) {
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fprintf(stderr, "Unable to open file %s\n", argv[xArg]);
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return 1;
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}
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} else {
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outFile = stdout;
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fflush(outFile);
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int result = _setmode(_fileno(outFile), _O_BINARY);
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if (result == -1) {
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fprintf(stderr, "Cannot set binary mode for outFile");
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return 1;
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}
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}
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/* if(writeDevRandom) {
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inmWriteEntropyStart(BUFLEN/8, debug);
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}
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*/
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if(!inmHealthCheckStart(PREDICTION_BITS, DESIGN_K, debug)) {
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fputs("Can't initialize health checker\n", stderr);
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return 1;
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}
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uint8_t keccakState[KeccakPermutationSizeInBytes];
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KeccakInitializeState(keccakState);
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char *message;
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if(!initializeUSB(&ftdic, &message)) {
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// Sometimes have to do it twice - not sure why
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//ftdi_usb_close(&ftdic);
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if(!initializeUSB(&ftdic, &message)) {
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fputs(message, stderr);
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return 1;
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}
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}
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// Endless loop: set SW1EN and SW2EN alternately
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uint32_t i;
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uint8_t outBuf[BUFLEN], inBuf[BUFLEN];
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for(i = 0; i < BUFLEN; i++) {
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// Alternate Ph1 and Ph2 - maybe should have both off in between
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outBuf[i] = i & 1? (1 << SWEN2) : (1 << SWEN1);
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outBuf[i] |= makeAddress(i & 0xf);
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}
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uint64_t good = 0;
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/*
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uint64_t bad = 0;
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*/
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while(true) {
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/*
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struct timespec start;
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clock_gettime(CLOCK_REALTIME, &start);
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*/
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DWORD numBytes;
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if(FT_Write(ftdic, outBuf, BUFLEN, &numBytes) != FT_OK || numBytes != BUFLEN) {
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fputs("USB write failed\n", stderr);
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return -1;
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}
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if(FT_Read(ftdic, inBuf, BUFLEN, &numBytes) != FT_OK || numBytes != BUFLEN) {
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fputs("USB read failed\n", stderr);
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return -1;
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}
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/*
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struct timespec end;
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clock_gettime(CLOCK_REALTIME, &end);
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uint32_t us = diffTime(&start, &end);
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//printf("diffTime:%u us\n", us);
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*/
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// if(us <= MAX_MICROSEC_FOR_SAMPLES) {
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uint8_t bytes[BUFLEN/8];
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uint32_t entropy = extractBytes(bytes, inBuf, raw);
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if(!noOutput && inmHealthCheckOkToUseData() && inmEntropyOnTarget(entropy, BUFLEN)) {
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processBytes(outFile, keccakState, bytes, entropy, raw, writeDevRandom, outputMultiplier);
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}
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good++;
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/* } else {
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bad++;
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}
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*/
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//if(((good + bad) & 0xff) == 0) {
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//printf("Good %lu, bad %lu\n", good, bad);
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//}
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fflush(stdout);
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fflush(stderr);
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}
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return 0;
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}
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