# CISR24 Dataset Specification ## 1. Scope `CISR24` is a native 24-class complex-baseband IQ benchmark for unified recognition of: - communication waveforms - radar sensing waveforms - ISAC waveforms The public release ID is `CISR24`. It is not a filtered view of a larger label space. All manifests, HDF5 files, class IDs, and label names are generated directly in the 24-class label space defined by the paper. ## 2. Final Taxonomy ### 2.1 Communication classes: 10 - `BPSK` - `QPSK` - `8PSK` - `16QAM` - `4FSK` - `8FSK` - `GMSK` - `OFDM-BPSK` - `OFDM-QPSK` - `OFDM-16QAM` ### 2.2 Radar sensing classes: 6 - `Rect` - `Barker` - `LFM` - `Costas` - `Frank` - `P4` ### 2.3 ISAC classes: 8 - `LFM-BPSK` - `LFM-QPSK` - `LFM-8PSK` - `LFM-MSK` - `LFM-GMSK` - `OFDM-LFM-BPSK` - `OFDM-LFM-QPSK` - `OFDM-LFM-16QAM` ## 3. Global Record Definition - sampling rate: `fs = 10 MHz` - record length: `L = 1024` - record duration: `102.4 us` - representation: complex baseband IQ - numeric type: `float32` ## 4. Clean Release Rules These rules apply to every class. ### 4.1 Baseband only All classes are generated and stored in complex baseband. - no class-specific fixed carriers - no superclass-specific center-frequency assignments ### 4.2 Power normalization and SNR definition For every example: 1. generate the active waveform burst 2. apply random initial phase 3. normalize the active burst to unit average power 4. embed the burst into the `1024`-sample record with random start offset 5. add complex AWGN using the active-burst power as the SNR reference The release audit verifies this convention independently from the nominal SNR labels. It gates every class/SNR cell using the inactive interval's pure-noise power, then pools records at each split/SNR level to check unit-power active burst normalization with an active-minus-inactive estimate. Interpretation: - `snr_db` in the manifest refers to active-burst SNR - `effective_snr_basis = active_burst` ### 4.3 Clean-version randomization only Allowed: - random symbol realization or code realization - random pulse or burst start offset - random initial phase - AWGN at target `snr_db` - waveform-internal parameter draws from small discrete sets Not included in this clean release: - CFO - IQ imbalance - multipath fading - delayed radar echoes - clipping - quantization stress These remain evaluation-time or future robust-variant factors. ## 5. Split Policy Balanced IID benchmark: - train: `1000` examples per class per SNR - val: `200` examples per class per SNR - test: `200` examples per class per SNR SNR grid: - `-20, -18, ..., 20 dB` - total SNR levels: `21` Independent generation: - train/val/test are generated independently - different splits use different seeds - no split is obtained by slicing the same mother waveform bank ## 6. Activity-Length Control To reduce activity-length leakage, the rebuild intentionally increases overlap between waveform families. ### 6.1 Support policy - communication single-carrier bursts use active support from `{576, 640, 704, 768, 832}` - radar pulse-like classes also concentrate in the same broad support range - OFDM uses native packet lengths from `2` or `3` OFDM symbols - OFDM-LFM shares the same native packet lengths, avoids standalone preamble concatenation, and uses a hybrid partial chirp-subcarrier design on data carriers ### 6.2 Release criterion The release must be accompanied by a shortcut audit. At minimum: - `active_len` - `bw95` - spectral centroid - spectral spread - crest factor - envelope sparsity - peak count in the periodogram ## 7. Waveform-Specific Design ## 7.1 Communication: single-carrier classes Applies to: - `BPSK` - `QPSK` - `8PSK` - `16QAM` - `4FSK` - `8FSK` - `GMSK` ### Linear modulations Applies to: - `BPSK` - `QPSK` - `8PSK` - `16QAM` Rules: - `sps = 4` and `Rs = 2.5 Msps` - Gray mapping - root-raised-cosine pulse shaping - `beta in {0.25, 0.35}` - span `= 8` symbols - `16QAM` uses unit-average-power normalization before pulse shaping ### 4FSK / 8FSK Implementation: - canonical CPFSK construction with continuous phase - `sps = 8` and `Rs = 1.25 Msps` - modulation index `h = 0.5` - adjacent tone spacing `Δf = h * Rs = 0.625 MHz` - tone spacing is stored in metadata as `cpfsk_tone_spacing_hz` ### GMSK Rules: - `BT = 0.3` - `sps = 4` - `Rs = 2.5 Msps` ## 7.2 Communication: OFDM classes Applies to: - `OFDM-BPSK` - `OFDM-QPSK` - `OFDM-16QAM` Default numerology: - `N_fft = 256` - `N_cp = 32` - `N_active in {96, 128}` - OFDM symbols per packet `M in {2, 3}` Subcarrier layout: - occupied subcarriers are symmetric around DC - DC is always null - `4` fixed pilot tones are inserted within the occupied subcarriers - the remaining occupied subcarriers carry BPSK / QPSK / 16QAM data symbols Time-domain lengths: - `2` symbols -> `576` - `3` symbols -> `864` ## 7.3 Radar sensing classes All radar examples are treated as single-pulse intrapulse snapshots. ### Rect - active support drawn from `{576, 640, 704, 768, 832}` ### Barker - `Lb in {7, 11, 13}` - chip counts and chip durations are chosen to overlap the support range of the other radar classes ### LFM - chirp bandwidth `B in {2, 3, 4} MHz` - chirp direction random in `{up, down}` - active support drawn from `{576, 640, 704, 768, 832}` ### Costas - `Nc in {7, 11, 13}` - frequency step `Df in {0.25, 0.5} MHz` - one valid Costas base permutation per length, plus symmetry-derived variants - chosen permutation ID is written as `costas_perm_id` ### Frank - order `M = 4` - `16` phase chips - chip samples in `{36, 40, 44, 48, 52}` ### P4 - code length `N in {16, 32}` - chip samples chosen so total support stays close to the shared radar support range ## 7.4 ISAC classes ISAC examples are defined as short packet-level or burst-level snapshots. ### LFM-single-carrier ISAC Applies to: - `LFM-BPSK` - `LFM-QPSK` - `LFM-8PSK` Construction: - generate a centered baseband LFM chirp over the target support - apply symbol-wise PSK phase coding on top of the chirp - chirp bandwidth `B in {2, 3, 4} MHz` - chirp direction random - this family is retained as a sensing-centric chirp-carried communication variant Signal model: - `x(t) = c_lfm(t) * exp(j*phi_k)` ### LFM-CPM ISAC Applies to: - `LFM-MSK` - `LFM-GMSK` Construction: - generate a constant-envelope CPM waveform (`MSK` or `GMSK`) - multiply it by a baseband LFM chirp over the same support - chirp bandwidth `B in {2, 3, 4} MHz` - chirp direction random Signal model: - `x(t) = s_cpm(t) * c_lfm(t)` ### OFDM-LFM ISAC Applies to: - `OFDM-LFM-BPSK` - `OFDM-LFM-QPSK` - `OFDM-LFM-16QAM` Construction: - use the same OFDM packet structure as the communication OFDM classes - retain the same OFDM numerology and pilot layout as the communication OFDM classes - keep the same OFDM active-bin layout as the communication OFDM classes - retain regular OFDM pilots on all pilot bins - select a comb-interleaved subset of data carriers as chirp-enhanced carriers - synthesize the final time-domain symbol as a hybrid mixture of regular OFDM and chirp-shaped basis functions on that data-carrier subset - keep inactive bins and DC null consistent with the communication OFDM classes - retain `chirp_bw_hz` and `chirp_dir` in metadata - no fixed chirp preamble is used ## 8. Release Storage Full release root: - `$CISR24_OUTPUT_ROOT` (or `dataset/releases/CISR24`) Files: - `hdf5/cisr24_train.h5` - `hdf5/cisr24_val.h5` - `hdf5/cisr24_test.h5` - `manifests/cisr24_train_manifest.csv` - `manifests/cisr24_val_manifest.csv` - `manifests/cisr24_test_manifest.csv` - `label_names.txt` - `classes.csv` ## 9. Manifest Schema Core fields: - `sample-id` - `split` - `h5-rel-path` - `h5-dataset` - `h5-index` - `class-id` - `super-class` - `class-name` - `waveform-family` - `snr-db` - `fs-hz` - `n-samples` - `seed` - `active-len` - `start-offset` - `channel-profile` - `release-name` - `iid-or-ood` Waveform-parameter fields: - `symbol-rate-hz` - `sps` - `nfft` - `cp-len` - `n-active` - `chirp-bw-hz` - `chirp-dir` - `pulse-width-us` - `barker-len` - `costas-len` - `frank-order` - `p4-len` - `rrc-beta` - `ofdm-num-symbols` - `costas-df-hz` - `costas-perm-id` - `chip-samples` - `gmsk-bt` - `cpfsk-modulation-index` - `cpfsk-tone-spacing-hz` - `effective-snr-basis` ## 10. Validation and Audit Bundled tooling in `tools/` is expected to check: - split sizes - class balance - per-class/per-SNR balance - HDF5 index consistency - split seed disjointness - seed uniqueness within each split - effective SNR consistency - shortcut-feature baselines ## 11. Paper Framing Recommended wording: - `24-class unified waveform recognition across communication, radar sensing, and ISAC signals` - `clean synthetic complex-baseband benchmark` Avoid: - `real-world dataset` - `fully realistic RF capture benchmark` - `complete ISAC channel benchmark`