Pipeline to Resolve Medication Codes(Transform)

Description

A pretrained resolver pipeline to extract medications and resolve their adverse reactions (ADE), RxNorm, UMLS, NDC, SNOMED CT codes, and action/treatments in clinical text.

Action/treatments are available for branded medication, and SNOMED codes are available for non-branded medication.

This pipeline can be used with Spark transform. You can use medication_resolver_pipeline as Lightpipeline (with annotate/fullAnnotate).

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How to use

from sparknlp.pretrained import PretrainedPipeline

medication_resolver_pipeline = PretrainedPipeline("medication_resolver_transform_pipeline", "en", "clinical/models")

text = """The patient was prescribed Amlodopine Vallarta 10-320mg, Eviplera. The other patient is given Lescol 40 MG and Everolimus 1.5 mg tablet."""

data = spark.createDataFrame([[text]]).toDF("text")

result = medication_resolver_pipeline.transform(data)
import com.johnsnowlabs.nlp.pretrained.PretrainedPipeline

val medication_resolver_pipeline = new PretrainedPipeline("medication_resolver_transform_pipeline", "en", "clinical/models")

val data = Seq("""The patient was prescribed Amlodopine Vallarta 10-320mg, Eviplera. The other patient is given Lescol 40 MG and Everolimus 1.5 mg tablet.""").toDS.toDF("text")

val result = medication_resolver_pipeline.fit(data).transform(data)
import nlu
nlu.load("en.resolve.medication_transform.pipeline").predict("""The patient was prescribed Amlodopine Vallarta 10-320mg, Eviplera. The other patient is given Lescol 40 MG and Everolimus 1.5 mg tablet.""")

Results

| chunk                        | ner_label   | ADE                         |   RxNorm | Action                     | Treatment                                  | UMLS     | SNOMED_CT   | NDC_Product   | NDC_Package   |
|:-----------------------------|:------------|:----------------------------|---------:|:---------------------------|:-------------------------------------------|:---------|:------------|:--------------|:--------------|
| Amlodopine Vallarta 10-320mg | DRUG        | Gynaecomastia               |   722131 | NONE                       | NONE                                       | C1949334 | 425838008   | 00093-7693    | 00093-7693-56 |
| Eviplera                     | DRUG        | Anxiety                     |   217010 | Inhibitory Bone Resorption | Osteoporosis                               | C0720318 | NONE        | NONE          | NONE          |
| Lescol 40 MG                 | DRUG        | NONE                        |   103919 | Hypocholesterolemic        | Heterozygous Familial Hypercholesterolemia | C0353573 | NONE        | 00078-0234    | 00078-0234-05 |
| Everolimus 1.5 mg tablet     | DRUG        | Acute myocardial infarction |  2056895 | NONE                       | NONE                                       | C4723581 | NONE        | 00054-0604    | 00054-0604-21 |

Model Information

Model Name: medication_resolver_transform_pipeline
Type: pipeline
Compatibility: Healthcare NLP 4.0.2+
License: Licensed
Edition: Official
Language: en
Size: 3.1 GB

Included Models

  • DocumentAssembler
  • SentenceDetectorDLModel
  • TokenizerModel
  • WordEmbeddingsModel
  • MedicalNerModel
  • NerConverterInternalModel
  • TextMatcherModel
  • ChunkMergeModel
  • ChunkMapperModel
  • ChunkMapperModel
  • ChunkMapperFilterer
  • Chunk2Doc
  • BertSentenceEmbeddings
  • SentenceEntityResolverModel
  • ResolverMerger
  • Doc2Chunk
  • ResolverMerger
  • ChunkMapperModel
  • ChunkMapperModel
  • ChunkMapperModel
  • Doc2Chunk
  • ChunkMapperModel
  • ChunkMapperModel
  • ChunkMapperModel
  • Finisher