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posteriordb-r vs spatstat.model

A side-by-side editorial comparison of posteriordb-r and spatstat.model — release velocity, themes, recent moves, and the top alternatives to consider.

posteriordb-r vs spatstat.model: at a glance

Featureposteriordb-rspatstat.model
SectorAnalyticsAnalytics
Velocity score0.02.5
Sparks · 30d00
Top themesbayesian inference, stan, benchmark data, r packagespatial-statistics, point-processes, model-fitting, r-package
Last editorial update1h ago2h ago
WebsiteVisit →Visit →

What is posteriordb-r?

posteriordb's R client ships a test-file fix and nothing else.

posteriordb-r is the R interface to the posteriordb collection of reference Bayesian posteriors, used for benchmarking inference algorithms. The single release in view fixes Stan syntax in test files. Neither the posterior collection nor the client API changes.

Read the full posteriordb-r trajectory →

What is spatstat.model?

spatstat's inference layer builds out determinantal and cluster process fitting

spatstat.model fits point process models and provides the diagnostics that go with them. The recent window is dominated by determinantal point process work — a variance-covariance matrix and more diagnostics in 3.7-2, additional `intensity` and `repul` methods in 3.7-1, and ROC curves for determinantal models in 3.5-0. Cluster and Cox process inference has advanced in parallel, with Waagepetersen's composite likelihood arriving in 3.6-1.

Read the full spatstat.model trajectory →

posteriordb-r vs spatstat.model: editorial side-by-side

P
posteriordb-r
ANALYTICS
0.0

posteriordb's R client ships a test-file fix and nothing else.

◆ Current state

posteriordb-r is the R interface to the posteriordb collection of reference Bayesian posteriors, used for benchmarking inference algorithms. The single release in view fixes Stan syntax in test files. Neither the posterior collection nor the client API changes.

◆ Where it's heading

One patch-level entry gives little to read. What it does say is that upkeep here tracks Stan's evolving syntax rather than the database's contents — the client's job is to stay compatible with the language the reference models are written in. Whether the collection itself is growing is not visible from this feed.

◆ Prediction

Expect further compatibility patches as Stan syntax deprecations land; the entries give no signal on new posteriors or API changes.

S2.5

spatstat's inference layer builds out determinantal and cluster process fitting

◆ Current state

spatstat.model fits point process models and provides the diagnostics that go with them. The recent window is dominated by determinantal point process work — a variance-covariance matrix and more diagnostics in 3.7-2, additional `intensity` and `repul` methods in 3.7-1, and ROC curves for determinantal models in 3.5-0. Cluster and Cox process inference has advanced in parallel, with Waagepetersen's composite likelihood arriving in 3.6-1.

◆ Where it's heading

The pattern is that model classes enter the package as fitting machinery first and only later gain the apparatus that makes them usable in practice — standard errors, diagnostics, residuals, model checking. Determinantal processes are visibly midway through that progression, reaching variance-covariance estimation only in the most recent release. Around this, the package has been broadening where models can be fitted at all: replicated point patterns on linear networks in 3.5-0, extended spatial logistic regression, and conversion of recursively partitioned models to tessellations.

◆ Prediction

Expect determinantal model support to keep filling out along the same path other model classes took, since variance estimation has only just arrived and partial residuals already exist for the cluster and Cox families. The entries do not signal a move into three dimensions here, unlike the geometry and simulation packages.

Alternatives to posteriordb-r and spatstat.model

Other Analytics products tracked by Sparkpulse, ranked by recent ship velocity. Each card links to a full editorial trajectory and lets you pivot into a head-to-head comparison with either posteriordb-r or spatstat.model.

See all posteriordb-r alternatives → · See all spatstat.model alternatives →

Recent activity from posteriordb-r and spatstat.model

Latest ship moves from both products, interleaved chronologically. ⚡ = editorial spark.

  1. 18d agospatstat.modelVariance-covariance and diagnostics for determinantal models
  2. 2mo agospatstat.modelMore intensity and repul methods; boundary-aware predictions
  3. 6mo agospatstat.modelComposite likelihood for cluster processes
  4. 8mo agospatstat.modelReplicated network models and partial residuals
  5. 9mo agoposteriordb-rStan syntax fixes in test files
  6. 10mo agospatstat.modelintensity.ppm improvements for Geyer models
  7. 1y agospatstat.modelROC curve support substantially extended

Frequently asked questions

What is the difference between posteriordb-r and spatstat.model?

They serve adjacent needs but don't currently overlap on shipped themes. spatstat.model is currently shipping more aggressively (velocity 2.5 vs 0.0), with 0 editorial sparks in the last 30 days against 0. See the at-a-glance table above for a side-by-side breakdown of velocity, recent sparks, and editorial themes.

Is posteriordb-r better than spatstat.model?

Sparkpulse doesn't pick a winner — we score release velocity, not feature parity. spatstat.model is currently shipping more aggressively (velocity 2.5 vs 0.0), with 0 editorial sparks in the last 30 days against 0. For your specific use case, the alternatives sections above list other Analytics products to evaluate alongside.

What are the best alternatives to posteriordb-r?

Top posteriordb-r alternatives in Analytics are ranked by recent ship velocity. Browse the "posteriordb-r alternatives" section above for the current picks, or visit /alternatives/posteriordb-r-r for the full list with editorial commentary on each.

What are the best alternatives to spatstat.model?

Top spatstat.model alternatives in Analytics are ranked by recent ship velocity. Browse the "spatstat.model alternatives" section above for the current picks, or visit /alternatives/spatstat-model for the full list with editorial commentary on each.