new approach for error handling
This commit is contained in:
@@ -148,44 +148,42 @@ int main(int argc, char **argv)
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return 0;
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}
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char *message;
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char *message = "no data?";
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bool errorFlag = false;
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if (opts.listDevices) {
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if(!listUSBDevices(&ftdic, &message)) {
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fputs(message, stderr);
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return 1;
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}
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//fputs(message, stdout); // todo: put list of devices to &message and print here, not in libinfnoise
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return 0;
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}
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if (opts.devRandom) {
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inmWriteEntropyStart(BUFLEN/8u, opts.debug); // todo: create method in libinfnoise.h for this
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// also todo: check if superUser in this mode (it will fail silently if not :-/)
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inmWriteEntropyStart(BUFLEN/8u, opts.debug); // todo: create method in libinfnoise.h for this?
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// also todo: check superUser in this mode (it will fail silently if not :-/)
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}
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// Optionally run in the background and optionally write a PID-file
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startDaemon(&opts);
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// initialize USB device and health check
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if (initInfnoise(&ftdic, opts.serial, &message, opts.debug) != true) {
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// initialize USB device, health check and Keccak state (see libinfnoise)
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if (initInfnoise(&ftdic, opts.serial, &message, !opts.raw, opts.debug) != true) {
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fputs(message, stderr);
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return 1; // ERROR (message still goes to stderr)
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return 1; // ERROR
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}
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// initialize keccak
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KeccakInitialize();
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uint8_t keccakState[KeccakPermutationSizeInBytes];
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KeccakInitializeState(keccakState);
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// endless loop
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uint64_t totalBytesWritten = 0u;
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while(true) {
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uint64_t prevTotalBytesWritten = totalBytesWritten;
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uint64_t bytesWritten = readData_private(&ftdic, keccakState, NULL, &message, opts.noOutput, opts.raw, opts.outputMultiplier, opts.devRandom); // calling libinfnoise's private readData method
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totalBytesWritten += readData_private(&ftdic, NULL, &message, &errorFlag, opts.noOutput, opts.raw, opts.outputMultiplier, opts.devRandom); // calling libinfnoise's private readData method
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if (totalBytesWritten == (unsigned long)-1) {
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fputs(message, stderr);
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if (errorFlag) {
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fprintf(stderr, "%s\n", message);
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return 1;
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}
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totalBytesWritten += bytesWritten;
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if(opts.debug && (1u << 20u)*(totalBytesWritten/(1u << 20u)) > (1u << 20u)*(prevTotalBytesWritten/(1u << 20u))) {
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fprintf(stderr, "Output %lu bytes\n", (unsigned long)totalBytesWritten);
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}
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@@ -1,4 +1,4 @@
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/* Driver for the Infinite Noise Multiplier USB stick */
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/* Library 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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@@ -18,11 +18,61 @@
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#include "libinfnoise.h"
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#include "KeccakF-1600-interface.h"
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uint8_t keccakState[KeccakPermutationSizeInBytes];
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bool initInfnoise(struct ftdi_context *ftdic,char *serial, char **message, bool keccak, bool debug) {
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prepareOutputBuffer();
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// initialize health check
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if (!inmHealthCheckStart(PREDICTION_BITS, DESIGN_K, debug)) {
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*message="Can't initialize health checker";
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return false;
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}
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// initialize USB
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if(!initializeUSB(ftdic, message, serial)) {
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// Sometimes have to do it twice - not sure why
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if(!initializeUSB(ftdic, message, serial)) {
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return false;
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}
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}
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// initialize keccak
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if (keccak) {
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KeccakInitialize();
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KeccakInitializeState(keccakState);
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}
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// let healthcheck collect some data
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uint32_t maxWarmupRounds = 500;
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uint32_t warmupRounds = 0;
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bool errorFlag = false;
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while(!inmHealthCheckOkToUseData()) {
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readData_private(ftdic, NULL, message, &errorFlag, false, true, 0, false);
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warmupRounds++;
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}
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if (warmupRounds > maxWarmupRounds) {
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*message = "Unable to collect enough entropy to initialize health checker.";
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return false;
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}
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return true;
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}
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uint8_t outBuf[BUFLEN];
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void prepareOutputBuffer() {
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uint32_t i;
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// Endless loop: set SW1EN and SW2EN alternately
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for(i = 0u; i < BUFLEN; i++) {
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// Alternate Ph1 and Ph2
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outBuf[i] = i & 1? (1 << SWEN2) : (1 << SWEN1);
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}
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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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uint32_t extractBytes(uint8_t *bytes, uint8_t *inBuf) {
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uint32_t extractBytes(uint8_t *bytes, uint8_t *inBuf, char **message, bool *errorFlag) {
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inmClearEntropyLevel();
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uint32_t i;
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for(i = 0u; i < BUFLEN/8u; i++) {
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@@ -35,10 +85,12 @@ uint32_t extractBytes(uint8_t *bytes, uint8_t *inBuf) {
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bool even = j & 1u; // Use the even bit if j is odd
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uint8_t bit = even? evenBit : oddBit;
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byte = (byte << 1u) | 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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if(!inmHealthCheckAddBit(evenBit, oddBit, even)) {
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fputs("Health check of Infinite Noise Multiplier failed!\n", stderr);
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exit(1);
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*message = "Health check of Infinite Noise Multiplier failed!";
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*errorFlag = true;
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return 0;
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}
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}
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bytes[i] = byte;
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@@ -54,16 +106,17 @@ double diffTime(struct timespec *start, struct timespec *end) {
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}
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// Write the bytes to either stdout, or /dev/random.
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void outputBytes(uint8_t *bytes, uint32_t length, uint32_t entropy, bool writeDevRandom) {
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bool outputBytes(uint8_t *bytes, uint32_t length, uint32_t entropy, bool writeDevRandom, char **message) {
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if(!writeDevRandom) {
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if(fwrite(bytes, 1, length, stdout) != 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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*message = "Unable to write output from Infinite Noise Multiplier";
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return false;
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}
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} else {
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inmWaitForPoolToHaveRoom();
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inmWriteEntropyToPool(bytes, length, entropy);
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}
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return true;
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}
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bool isSuperUser(void) {
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@@ -76,8 +129,9 @@ bool isSuperUser(void) {
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// outputMultiplier is 0, we output only as many bits as we measure in entropy.
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// This allows a user to generate hundreds of MiB per second if needed, for use
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// as cryptographic keys.
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uint32_t processBytes(uint8_t *keccakState, uint8_t *bytes, uint8_t *result, uint32_t entropy, bool raw,
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bool writeDevRandom, uint32_t outputMultiplier, bool noOutput) {
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uint32_t processBytes(uint8_t *bytes, uint8_t *result, uint32_t entropy,
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bool raw, bool writeDevRandom, uint32_t outputMultiplier, bool noOutput,
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char **message, bool *errorFlag) {
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//Use the lower of the measured entropy and the provable lower bound on
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//average entropy.
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if(entropy > inmExpectedEntropyPerBit*BUFLEN/INM_ACCURACY) {
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@@ -86,7 +140,10 @@ uint32_t processBytes(uint8_t *keccakState, uint8_t *bytes, uint8_t *result, uin
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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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if (!noOutput) {
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outputBytes(bytes, BUFLEN/8u, entropy, writeDevRandom);
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if (!outputBytes(bytes, BUFLEN/8u, entropy, writeDevRandom, message)) {
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*errorFlag = true;
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return 0; // write failed
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}
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} else {
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if (result != NULL) {
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memcpy(result, bytes, BUFLEN/8u * sizeof(uint8_t));
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@@ -108,7 +165,10 @@ uint32_t processBytes(uint8_t *keccakState, uint8_t *bytes, uint8_t *result, uin
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// Output all the bytes of entropy we have
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KeccakExtract(keccakState, dataOut, (entropy + 63u)/64u);
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if (!noOutput) {
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outputBytes(dataOut, entropy/8u, entropy & 0x7u, writeDevRandom);
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if (!outputBytes(dataOut, entropy/8u, entropy & 0x7u, writeDevRandom, message)) {
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*errorFlag = true;
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return 0;
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}
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} else {
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if (result != NULL) {
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memcpy(result, dataOut, entropy/8u * sizeof(uint8_t));
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@@ -133,7 +193,10 @@ uint32_t processBytes(uint8_t *keccakState, uint8_t *bytes, uint8_t *result, uin
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entropyThisTime = 8u*bytesToWrite;
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}
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if (!noOutput) {
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outputBytes(dataOut, bytesToWrite, entropyThisTime, writeDevRandom);
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if (!outputBytes(dataOut, bytesToWrite, entropyThisTime, writeDevRandom, message)) {
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*errorFlag = true;
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return 0;
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}
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} else {
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//memcpy(result + bytesWritten, dataOut, bytesToWrite * sizeof(uint8_t)); //doesn't work?
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// alternative: loop through dataOut and append array elements to result..
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@@ -151,8 +214,9 @@ uint32_t processBytes(uint8_t *keccakState, uint8_t *bytes, uint8_t *result, uin
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}
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}
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if(bytesWritten != outputMultiplier*(256u/8u)) {
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fprintf(stderr, "Internal error outputing bytes\n");
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exit(1);
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*message = "Internal error outputing bytes";
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*errorFlag = true;
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return 0;
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}
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return bytesWritten;
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}
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@@ -171,9 +235,9 @@ bool listUSBDevices(struct ftdi_context *ftdic, char** message) {
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if (rc < 0) {
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if (!isSuperUser()) {
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*message = "Can't find Infinite Noise Multiplier. Try running as super user?\n";
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*message = "Can't find Infinite Noise Multiplier. Try running as super user?";
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} else {
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*message = "Can't find Infinite Noise Multiplier\n";
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*message = "Can't find Infinite Noise Multiplier";
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}
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}
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@@ -182,7 +246,7 @@ bool listUSBDevices(struct ftdi_context *ftdic, char** message) {
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rc = ftdi_usb_get_strings(ftdic, curdev->dev, manufacturer, 128, description, 128, serial, 128);
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if (rc < 0) {
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if (!isSuperUser()) {
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*message = "Can't find Infinite Noise Multiplier. Try running as super user?\n";
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*message = "Can't find Infinite Noise Multiplier. Try running as super user?";
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return false;
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}
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//*message = "ftdi_usb_get_strings failed: %d (%s)\n", rc, ftdi_get_error_string(ftdic));
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@@ -190,7 +254,7 @@ bool listUSBDevices(struct ftdi_context *ftdic, char** message) {
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}
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// print to stdout
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printf("Manufacturer: %s, Description: %s, Serial: %s\n", manufacturer, description, serial);
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printf("Manufacturer: %s, Description: %s, Serial: %s", manufacturer, description, serial);
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curdev = curdev->next;
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}
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@@ -205,7 +269,7 @@ bool initializeUSB(struct ftdi_context *ftdic, char **message, char *serial) {
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// search devices
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int rc = 0;
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if ((rc = ftdi_usb_find_all(ftdic, &devlist, INFNOISE_VENDOR_ID, INFNOISE_PRODUCT_ID)) < 0) {
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*message = "Can't find Infinite Noise Multiplier\n";
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*message = "Can't find Infinite Noise Multiplier";
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return false;
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}
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@@ -214,13 +278,13 @@ bool initializeUSB(struct ftdi_context *ftdic, char **message, char *serial) {
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if (serial == NULL) {
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// more than one found AND no serial given
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if (rc >= 2) {
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*message = "Multiple Infnoise TRNGs found and serial not specified, using the first one!\n";
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*message = "Multiple Infnoise TRNGs found and serial not specified, using the first one!";
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}
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if (ftdi_usb_open(ftdic, INFNOISE_VENDOR_ID, INFNOISE_PRODUCT_ID) < 0) {
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if(!isSuperUser()) {
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*message = "Can't open Infinite Noise Multiplier. Try running as super user?\n";
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*message = "Can't open Infinite Noise Multiplier. Try running as super user?";
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} else {
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*message = "Can't open Infinite Noise Multiplier\n";
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*message = "Can't open Infinite Noise Multiplier";
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}
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return false;
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}
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@@ -229,9 +293,9 @@ bool initializeUSB(struct ftdi_context *ftdic, char **message, char *serial) {
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rc = ftdi_usb_open_desc(ftdic, INFNOISE_VENDOR_ID, INFNOISE_PRODUCT_ID, NULL, serial);
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if (rc < 0) {
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if(!isSuperUser()) {
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*message = "Can't find Infinite Noise Multiplier. Try running as super user?\n";
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*message = "Can't find Infinite Noise Multiplier. Try running as super user?";
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} else {
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*message = "Can't find Infinite Noise Multiplier with given serial\n";
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*message = "Can't find Infinite Noise Multiplier with given serial";
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}
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return false;
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}
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@@ -241,18 +305,18 @@ bool initializeUSB(struct ftdi_context *ftdic, char **message, char *serial) {
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// Set high baud rate
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rc = ftdi_set_baudrate(ftdic, 30000);
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if(rc == -1) {
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*message = "Invalid baud rate\n";
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*message = "Invalid baud rate";
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return false;
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} else if(rc == -2) {
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*message = "Setting baud rate failed\n";
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*message = "Setting baud rate failed";
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return false;
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} else if(rc == -3) {
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*message = "Infinite Noise Multiplier unavailable\n";
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*message = "Infinite Noise Multiplier unavailable";
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return false;
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}
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rc = ftdi_set_bitmode(ftdic, MASK, BITMODE_SYNCBB);
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if(rc == -1) {
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*message = "Can't enable bit-bang mode\n";
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*message = "Can't enable bit-bang mode";
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return false;
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} else if(rc == -2) {
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*message = "Infinite Noise Multiplier unavailable\n";
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@@ -262,51 +326,40 @@ bool initializeUSB(struct ftdi_context *ftdic, char **message, char *serial) {
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// Just test to see that we can write and read.
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uint8_t buf[64u] = {0u,};
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if(ftdi_write_data(ftdic, buf, 64) != 64) {
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*message = "USB write failed\n";
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*message = "USB write failed";
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return false;
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}
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if(ftdi_read_data(ftdic, buf, 64) != 64) {
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*message = "USB read failed\n";
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*message = "USB read failed";
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return false;
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}
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return true;
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}
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uint64_t readRawData(struct ftdi_context *ftdic, uint8_t *result, char **message) {
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return readData_private(ftdic, NULL, result, message, false, true, 0, false);
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uint32_t readRawData(struct ftdi_context *ftdic, uint8_t *result, char **message, bool *errorFlag) {
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return readData_private(ftdic, result, message, errorFlag, false, true, 0, false);
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}
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uint64_t readData(struct ftdi_context *ftdic, uint8_t *keccakState, uint8_t *result, char **message, uint32_t outputMultiplier) {
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return readData_private(ftdic, keccakState, result, message, false, false, outputMultiplier, false);
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uint32_t readData(struct ftdi_context *ftdic, uint8_t *result, char **message, bool *errorFlag, uint32_t outputMultiplier) {
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return readData_private(ftdic, result, message, errorFlag, false, false, outputMultiplier, false);
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}
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uint8_t outBuf[BUFLEN];
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void prepareOutputBuffer() {
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uint32_t i;
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// Endless loop: set SW1EN and SW2EN alternately
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for(i = 0u; i < BUFLEN; i++) {
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// Alternate Ph1 and Ph2
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outBuf[i] = i & 1? (1 << SWEN2) : (1 << SWEN1);
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}
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}
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uint64_t readData_private(struct ftdi_context *ftdic, uint8_t *keccakState, uint8_t *result, char **message, bool noOutput, bool raw, uint32_t outputMultiplier, bool devRandom) {
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uint32_t readData_private(struct ftdi_context *ftdic, uint8_t *result, char **message, bool *errorFlag,
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bool noOutput, bool raw, uint32_t outputMultiplier, bool devRandom) {
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uint8_t inBuf[BUFLEN];
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uint64_t totalBytesWritten = 0u;
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struct timespec start;
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clock_gettime(CLOCK_REALTIME, &start);
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// write clock signal
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if(ftdi_write_data(ftdic, outBuf, BUFLEN) != BUFLEN) {
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*message = "USB write failed";
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return -1;
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*errorFlag = true;
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}
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// and read 512 byte from the internal buffer (in synchronous bitbang mode)
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if(ftdi_read_data(ftdic, inBuf, BUFLEN) != BUFLEN) {
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*message = "USB read failed";
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return -1;
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*errorFlag = true;
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}
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struct timespec end;
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@@ -314,37 +367,15 @@ uint64_t readData_private(struct ftdi_context *ftdic, uint8_t *keccakState, uint
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uint32_t us = diffTime(&start, &end);
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if(us <= MAX_MICROSEC_FOR_SAMPLES) {
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uint8_t bytes[BUFLEN/8u];
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uint32_t entropy = extractBytes(bytes, inBuf);
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uint32_t entropy = extractBytes(bytes, inBuf, message, errorFlag);
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// call health check and process bytes if OK
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if(!noOutput && inmHealthCheckOkToUseData() && inmEntropyOnTarget(entropy, BUFLEN)) {
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totalBytesWritten += processBytes(keccakState, bytes, result, entropy, raw, devRandom, outputMultiplier, noOutput);
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if (inmHealthCheckOkToUseData() && inmEntropyOnTarget(entropy, BUFLEN)) {
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uint32_t byteswritten = processBytes(bytes, result, entropy, raw, devRandom, outputMultiplier, noOutput, message, errorFlag);
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return byteswritten;
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}
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}
|
||||
return totalBytesWritten;
|
||||
}
|
||||
|
||||
uint8_t keccakState[KeccakPermutationSizeInBytes];
|
||||
bool initInfnoise(struct ftdi_context *ftdic,char *serial, char **message, bool debug) {
|
||||
prepareOutputBuffer();
|
||||
// initialize health check
|
||||
if (!inmHealthCheckStart(PREDICTION_BITS, DESIGN_K, debug)) {
|
||||
*message="Can't initialize health checker";
|
||||
return false;
|
||||
}
|
||||
|
||||
// initialize USB
|
||||
if(!initializeUSB(ftdic, message, serial)) {
|
||||
// Sometimes have to do it twice - not sure why
|
||||
if(!initializeUSB(ftdic, message, serial)) {
|
||||
return false;
|
||||
}
|
||||
}
|
||||
return true;
|
||||
|
||||
// initialize keccak
|
||||
KeccakInitialize();
|
||||
KeccakInitializeState(keccakState);
|
||||
return 0;
|
||||
}
|
||||
|
||||
#ifdef LIB_EXAMPLE_PROGRAM
|
||||
@@ -368,7 +399,6 @@ int main() {
|
||||
} else {
|
||||
resultSize = multiplier*32u;
|
||||
}
|
||||
fprintf(stderr, "%d\n", resultSize);
|
||||
|
||||
uint64_t totalBytesWritten = 0u;
|
||||
|
||||
|
||||
@@ -47,18 +47,18 @@ void inmWriteEntropyStart(uint32_t bufLen, bool debug);
|
||||
void inmWriteEntropyToPool(uint8_t *bytes, uint32_t length, uint32_t entropy);
|
||||
void inmWaitForPoolToHaveRoom(void);
|
||||
void inmDumpStats(void);
|
||||
//bool isSuperUser(void);
|
||||
|
||||
extern double inmK, inmExpectedEntropyPerBit;
|
||||
|
||||
bool initializeUSB(struct ftdi_context *ftdic, char **message, char *serial);
|
||||
void prepareOutputBuffer();
|
||||
|
||||
struct timespec;
|
||||
double diffTime(struct timespec *start, struct timespec *end);
|
||||
uint32_t extractBytes(uint8_t *bytes, uint8_t *inBuf);
|
||||
void outputBytes(uint8_t *bytes, uint32_t length, uint32_t entropy, bool writeDevRandom);
|
||||
uint32_t processBytes(uint8_t *keccakState, uint8_t *bytes, uint8_t *result, uint32_t entropy, bool raw,
|
||||
bool writeDevRandom, uint32_t outputMultiplier, bool noOutput);
|
||||
uint32_t extractBytes(uint8_t *bytes, uint8_t *inBuf, char **message, bool *errorFlag);
|
||||
|
||||
uint64_t readData_private(struct ftdi_context *ftdic, uint8_t *keccakState, uint8_t *result, char **message,
|
||||
bool noOutput, bool raw, uint32_t outputMultiplier, bool devRandom);
|
||||
|
||||
//void add_to_list(struct inm_devlist *list, struct infnoise_device *dev);
|
||||
bool outputBytes(uint8_t *bytes, uint32_t length, uint32_t entropy, bool writeDevRandom, char **message);
|
||||
uint32_t processBytes(uint8_t *bytes, uint8_t *result, uint32_t entropy, bool raw,
|
||||
bool writeDevRandom, uint32_t outputMultiplier, bool noOutput, char **message, bool *errorFlag);
|
||||
|
||||
uint32_t readData_private(struct ftdi_context *ftdic, uint8_t *result, char **message, bool *errorFlag, bool noOutput, bool raw, uint32_t outputMultiplier, bool devRandom);
|
||||
|
||||
Reference in New Issue
Block a user