227 lines
5.8 KiB
Markdown
227 lines
5.8 KiB
Markdown
# SpectraREML file contract
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All raw binary files are little-endian, headerless, and contiguous. Integer indices and element offsets are zero based.
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## Shared sample order
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The following matrices must use exactly the same sample order:
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1. GRM;
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2. common design matrix;
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3. phenotype matrix;
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4. extra-covariate matrix.
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When supplied, `--grm-id` is checked for the expected number of nonempty rows. Domain adapters remain responsible for verifying the actual identifiers and order.
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## GRM
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`--grm-bin` uses the GCTA lower-triangle packed `float32` layout:
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```text
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G[0,0],
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G[1,0], G[1,1],
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G[2,0], G[2,1], G[2,2], ...
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```
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For `n` samples, the exact file size is `4 * n * (n + 1) / 2` bytes.
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## Common design
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`--base-x` is a row-major `float64` matrix with shape
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```text
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n_samples × n_base_covariates
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```
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It must already contain every common fixed effect, including an intercept if required. SpectraREML does not add or standardize columns.
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## Phenotypes
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`--phenotypes` is a row-major `float64` matrix with shape
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```text
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n_phenotype_rows × n_samples
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```
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Each task selects one row through `phenotype_row`.
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## Extra fixed-effect covariates
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`--extra-covariates` is an optional row-major `float32` matrix with shape
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```text
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n_extra_covariate_rows × n_samples
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```
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Only rows referenced by at least one task are read and rotated. The file may be omitted when the row count and all task-specific counts are zero.
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## Task table
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`--tasks` is a UTF-8 tab-separated file with exactly four columns:
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```text
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task_index task_id phenotype_row n_extra_covariates
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0 trait_a 0 0
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1 trait_b 1 2
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```
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Requirements:
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- `task_index` is consecutive and zero based;
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- `task_id` is nonempty and unique;
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- `phenotype_row` is within the phenotype matrix;
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- `n_extra_covariates` agrees with the CSR offsets.
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## CSR task-to-covariate mapping
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`--extra-offsets` is an `int64` array of length `n_tasks + 1`. It begins with zero and is nondecreasing.
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`--extra-indices` is an `int32` array of length `offsets[-1]`. For task `i`, its extra-covariate row indices are
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```text
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indices[offsets[i]:offsets[i+1]]
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```
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An index must be in `[0, n_extra_covariate_rows)`, and a task cannot reference the same row twice.
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## Block output
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For block number `KKKKKK`:
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```text
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block_KKKKKK.summary.tsv
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block_KKKKKK.beta.f64.bin
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block_KKKKKK.cov.f64.bin
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block_KKKKKK.fixed_se.f64.bin
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block_KKKKKK.fixed_stat.f64.bin
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block_KKKKKK.fixed_ddf.f64.bin
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block_KKKKKK.fixed_p.f64.bin
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block_KKKKKK.complete
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```
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The summary header is:
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```text
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task_index
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task_id
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status
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n_fixed
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n_extra_covariates
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beta_offset
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cov_offset
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sigma_g2
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sigma_e2
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h2
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logL
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iterations
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line_search_steps
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grad_inf
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fixed_test_method
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fixed_test_status
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fixed_test_offset
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extra_joint_num_df
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extra_joint_den_df
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extra_joint_f
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extra_joint_p
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fixed_test_error
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error
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```
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`beta_offset`, `cov_offset`, and `fixed_test_offset` count `float64`
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elements, not bytes. A negative beta/covariance offset means that no estimates
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were emitted. A negative fixed-test offset means that no valid coefficient-wise
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fixed-effect tests were emitted; successful REML estimates are retained even
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when inference fails.
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The covariance array uses the row-wise packed lower triangle:
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```text
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(0,0), (1,0), (1,1), (2,0), (2,1), (2,2), ...
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```
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The `.complete` marker is written last and contains tab-separated key/value rows:
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```text
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format spectra-reml-block-v2
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block 0
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tasks 256
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beta_elements 4096
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cov_elements 34816
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fixed_test_elements 4096
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```
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Consumers must ignore blocks without `.complete`.
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## Status values
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```text
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converged
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converged_boundary
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max_iterations
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line_search_failed
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rank_deficient
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invalid_input
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non_positive_covariance
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numerical_error
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```
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`converged_boundary` is a successful residual-only solution accepted after the one-sided variance-component score and likelihood checks.
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## Fixed-effect inference
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`--fixed-effect-test` selects `satterthwaite` (the default),
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`kenward-roger`, or `none`.
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The four `fixed_*` arrays have the same offsets and coefficient order as
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`beta`. They contain standard errors, statistics, denominator degrees of
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freedom, and p-values. With Satterthwaite inference, a coefficient statistic is
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a signed t statistic. With Kenward-Roger inference, it is an F statistic with
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one numerator degree of freedom. For every task with extra covariates, the
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summary also contains an F test of the joint null that all task-specific fixed
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effects are zero.
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`fixed_test_status` is one of:
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```text
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not_requested
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ok
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boundary_conditional
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fit_not_converged
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invalid_contrast
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information_singular
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numerical_error
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```
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At `converged_boundary`, inference conditions on the accepted active set
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`sigma_g2=0`; `fixed_test_status` is `boundary_conditional` and only residual
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variance uncertainty contributes to the small-sample adjustment.
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Phenotypes are scaled internally by their task-specific OLS residual RMS before
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optimization. Reported fixed effects, fixed-effect covariance, variance
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components, and restricted likelihood are transformed back to the original
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input phenotype units. Input binary files are never modified.
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The strong-Wolfe zoom uses safeguarded quadratic interpolation with a 2%
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endpoint margin and falls back to bisection. At an evaluation limit or a
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collapsed bracket, the last valid likelihood-improving point encountered is
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accepted. `line_search_failed` therefore means that the search found no valid
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point that improved the starting likelihood.
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## Generic finalized output
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The Python CLI exports one TSV row per task. It includes the full summary plus:
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```text
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beta_json
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covariance_packed_lower_json
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fixed_effect_se_json
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fixed_effect_statistic_json
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fixed_effect_denominator_df_json
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fixed_effect_p_value_json
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```
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Project-specific software can attach coefficient names. The public C++
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inference API also accepts general linear hypotheses `L beta = rhs`; the batch
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format currently emits coefficient-wise tests and the joint extra-covariate
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test.
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