Search the complete SNOMED-CT database. Access official guidelines, notes, modifiers, and documentation requirements instantly.
Browse the official clinical repository for active SNOMED-CT classifications. Up to 50 codes are displayed per page.
| Code | Category / Specialty | Description |
|---|---|---|
| 113907005 |
Healthcare Codes
General
|
Peptostreptococcus harei
|
| 113908000 |
Healthcare Codes
General
|
Peptostreptococcus ivorii
|
| 113909008 |
Healthcare Codes
General
|
Peptostreptococcus lacrimalis
|
| 113910003 |
Healthcare Codes
General
|
Peptostreptococcus lactolyticus
|
| 11391004 |
Healthcare Codes
General
|
Exudative detachment of retinal pigment epithelium
|
| 113911004 |
Healthcare Codes
General
|
Peptostreptococcus octavius
|
| 113912006 |
Healthcare Codes
General
|
Peptostreptococcus parvulus
|
| 113914007 |
Healthcare Codes
General
|
Peptostreptococcus hydrogenalis
|
| 113914261000119000 |
Healthcare Codes
General
|
Synovitis of joint of right hand (disorder)
|
| 113915008 |
Healthcare Codes
General
|
Peptostreptococcus vaginalis
|
| 113916009 |
Healthcare Codes
General
|
Propionibacterium cyclohexanicum
|
| 113917000 |
Healthcare Codes
General
|
Propionibacterium freudenreichii ss fredenreichii
|
| 113918005 |
Healthcare Codes
General
|
Propionibacterium freudenreichii ss shermanii
|
| 113919002 |
Healthcare Codes
General
|
Propionibacterium prionicus
|
| 113920008 |
Healthcare Codes
General
|
Pseudomonas antimicrobia
|
| 11392006 |
Healthcare Codes
General
|
Aminoglycoside N^6'^-acetyltransferase
|
| 113921007 |
Healthcare Codes
General
|
Pseudomonas avellanae
|
| 113922000 |
Healthcare Codes
General
|
Pseudomonas balearica
|
| 113923005 |
Healthcare Codes
General
|
Pseudomonas beteli
|
| 113924004 |
Healthcare Codes
General
|
Pseudomonas flavescens
|
| 113925003 |
Healthcare Codes
General
|
Pseudomonas flectens
|
| 113926002 |
Healthcare Codes
General
|
Pseudomonas geniculata
|
| 113927006 |
Healthcare Codes
General
|
Pseudomonas halophila
|
| 113928001 |
Healthcare Codes
General
|
Pseudomonas hibiscicola
|
| 113929009 |
Healthcare Codes
General
|
Pseudomonas luteola
|
| 113930004 |
Healthcare Codes
General
|
Pseudomonas monteilii
|
| 11393001 |
Healthcare Codes
General
|
Great-great grand child
|
| 113931000 |
Healthcare Codes
General
|
Pseudomonas oryzihabitans
|
| 113932007 |
Healthcare Codes
General
|
Pseudomonas perfectomarina
|
| 113933002 |
Healthcare Codes
General
|
Pseudomonas phenazinium
|
| 113934008 |
Healthcare Codes
General
|
Pseudomonas pseudoalcaligenes ss pseudoalcaligenes
|
| 113935009 |
Healthcare Codes
General
|
Pseudomonas rhodesiae
|
| 113936005 |
Healthcare Codes
General
|
Pseudomonas savastanoi
|
| 113937001 |
Healthcare Codes
General
|
Pseudomonas syringae ss savastoni
|
| 113938006 |
Healthcare Codes
General
|
Pseudomonas syringae ss syringae
|
| 113939003 |
Healthcare Codes
General
|
Pseudomonas syzygii
|
| 113940001 |
Healthcare Codes
General
|
Pseudomonas veronii
|
| 11394007 |
Healthcare Codes
General
|
Tabanus quinquefasciatus
|
| 113941002 |
Healthcare Codes
General
|
Psychrobacter phenylpyruvicus
|
| 113942009 |
Healthcare Codes
General
|
Rhodococcus roseus
|
| 113943004 |
Healthcare Codes
General
|
Ruminococcus hansenii
|
| 113944005 |
Healthcare Codes
General
|
Ruminococcus hydrogenotrophicus
|
| 113945006 |
Healthcare Codes
General
|
Ruminococcus palsutris
|
| 113946007 |
Healthcare Codes
General
|
Ruminococcus productus
|
| 113947003 |
Healthcare Codes
General
|
Ruminococcus schinkii
|
| 113948008 |
Healthcare Codes
General
|
Selenomonas acidaminovorans
|
| 113949000 |
Healthcare Codes
General
|
Selenomonas lacticifex
|
| 113950000 |
Healthcare Codes
General
|
Simonsiella crassa
|
| 11395008 |
Healthcare Codes
General
|
Third cranial nerve function
|
| 113951001 |
Healthcare Codes
General
|
Spirillum volutans
|
The Systematized Nomenclature of Medicine - Clinical Terms (SNOMED CT) is the most comprehensive, multilingual clinical healthcare terminology in the world. Owned and maintained by SNOMED International, it provides the core general terminology for electronic health records (EHRs) and contains more than 350,000 active concepts representing clinical findings, symptoms, diagnoses, procedures, body structures, and organisms.
For Health Information Management (HIM) professionals, clinical informaticists, and Revenue Cycle Management (RCM) experts, understanding SNOMED CT is the key to unlocking the true power of healthcare data. While ICD-10 is the language of epidemiology and financial reimbursement, SNOMED CT is the true language of clinical medicine. It is the invisible database that translates a physician's raw, unstructured thoughts into structured, computable data that can be analyzed by artificial intelligence and shared across disparate hospital systems.
Under the federal Promoting Interoperability programs (formerly Meaningful Use), all Certified EHR Technology (CEHRT) in the United States must utilize SNOMED CT to encode patient problem lists, smoking status, and family health history. A hospital cannot achieve interoperability compliance—or secure millions of dollars in federal quality incentives—without a robust SNOMED CT infrastructure.
A common point of confusion in the healthcare industry is the relationship between SNOMED CT and ICD-10-CM. Why does a hospital need both? They serve fundamentally different, yet complementary, purposes.
ICD-10-CM is a classification system designed primarily for statistical reporting, epidemiology, and financial billing. It places diseases into broad "buckets." For example, if a patient has a highly specific, rare subtype of pneumonia, ICD-10 might force the coder to assign a generic "other specified pneumonia" code because a highly granular code does not exist. The clinical specificity is lost for the sake of statistical grouping.
SNOMED CT, conversely, is an ontology designed for direct clinical care. It has the depth and granularity to capture the exact clinical reality of the patient at the point of care, exactly as the physician conceptualizes it, regardless of whether a specific billing code exists for it. When a physician adds a diagnosis to a patient's electronic "Problem List," they are selecting a SNOMED CT concept, not an ICD-10 code.
The sheer size of SNOMED CT would be unmanageable without its rigid, mathematically precise architecture. The terminology is built upon three core components: Concepts, Descriptions, and Relationships.
A Concept represents a unique clinical meaning. Every concept is assigned a unique numeric Concept Identifier (SCTID) that is never reused, even if the concept becomes inactive. For example, the concept of a "Myocardial Infarction" is represented by a single SCTID, ensuring that computers universally recognize it regardless of the language or dialect used by the user.
Because humans use different words to describe the same clinical reality, SNOMED CT links multiple "Descriptions" to a single Concept. Descriptions are the human-readable terms. There are several types of descriptions:
Relationships form the massive semantic web that gives SNOMED CT its computing power. Relationships link concepts together logically.
The most fundamental relationship is the "Is-a" relationship, which builds a polyhierarchy (meaning a concept can have multiple "parents"). For example, the concept Viral Pneumonia has an "Is-a" relationship to both Viral lower respiratory infection AND Pneumonia. If a clinical decision support system wants to flag all patients with any type of viral infection, the system will instantly locate the viral pneumonia patients because of this built-in mathematical relationship.
There are also Attribute Relationships that define the characteristics of a concept. For example, the concept Viral Pneumonia will have an attribute relationship of "Finding site" linking it to Lung structure, and an attribute relationship of "Causative agent" linking it to Virus.
A unique capability of SNOMED CT is its support for building complex clinical phrases on the fly.
The massive explosion of unstructured data in healthcare (e.g., free-text physician progress notes, pathology reports, discharge summaries) represents a significant challenge for data analytics. Modern Natural Language Processing (NLP) engines rely heavily on SNOMED CT to parse this unstructured text.
When an NLP engine reads a sentence like, "Patient presented with a severe heart attack," it utilizes the SNOMED synonym database to recognize that "heart attack" means SCTID 22298006 (Myocardial infarction). The NLP engine can then extract this structured data point and insert it into a clinical registry, use it to trigger an automated billing workflow, or flag the patient for a population health intervention.
While SNOMED CT is not submitted on a CMS-1500 or UB-04 claim form for financial reimbursement, its accurate utilization in the EHR directly dictates the success of the Revenue Cycle.
Because physicians document their Problem Lists using SNOMED CT, the EHR must utilize complex crosswalks (such as the I-MAGIC map provided by the National Library of Medicine) to translate that SNOMED concept into the appropriate ICD-10-CM billing code. This translation is rarely a simple one-to-one mapping.
A single SNOMED concept (e.g., Essential hypertension) might map cleanly to a single ICD-10 code (I10). However, a SNOMED concept like Femur fracture is a one-to-many map; it requires the physician to provide additional attributes (laterality, fracture type, encounter type) before it can generate a valid ICD-10-CM code. If the EHR's SNOMED-to-ICD map is outdated or poorly configured, it will generate thousands of unspecified ICD-10 codes, leading directly to mass denials from Medicare and commercial payers.
SNOMED CT is the foundational bedrock of modern clinical informatics. It strips away the ambiguity of human language and replaces it with a rigid, computable ontology that allows disparate healthcare systems across the globe to communicate with perfect clarity.
For the health data professional, mastering the architecture of SNOMED CT—understanding Concepts, Descriptions, and the polyhierarchical Relationships—is critical. It empowers advanced clinical decision support, fuels cutting-edge artificial intelligence and NLP models, and serves as the clinical origin point for the entire Revenue Cycle pipeline. As healthcare continues to transition toward value-based care and massive data analytics, the importance of SNOMED CT will only continue to grow exponentially.
Welcome to the most comprehensive and lightning-fast SNOMED-CT code lookup tool available online. Whether you are a dedicated health information management (HIM) professional, a certified medical coder, a specialized biller, or a clinical data analyst, our advanced search engine allows you to instantly search SNOMED-CT codes and find highly accurate code descriptions in mere milliseconds. Navigating the complex world of healthcare terminology requires precision, and our platform is built to deliver exactly that.
Looking up medical codes can often be a frustrating and time-consuming experience, especially when relying on slow, clunky platforms or physical manuals that quickly become outdated. Our dedicated SNOMED-CT search directory elegantly bridges that gap. By utilizing our highly optimized, state-of-the-art database, you can effortlessly find SNOMED-CT code descriptions by simply typing a keyword, a specific diagnosis or procedure, an anatomical site, or the exact alphanumeric code itself. The results are rendered in real-time as you type, allowing you to completely bypass cumbersome PDF manuals and heavy physical coding books, streamlining your daily workflow.
To perform an accurate SNOMED-CT lookup, navigate to the intuitive search bar located at the top of this page. If you have a specific clinical term or abstract concept in mind, simply type the term into the search field. Our intelligent, NLP-driven algorithm will instantly scan the entire official database to populate a comprehensive list of matching SNOMED-CT codes and descriptions. Conversely, if you already possess the specific code and simply need to verify its validity or read the full tabular guidelines, you can type the identifier directly into the bar to instantly verify its official long-form description.
Our platform is meticulously engineered specifically for medical coders, billers, and clinical analysts who demand both speed and unwavering accuracy. When you search for SNOMED-CT codes on our website, you are guaranteed to receive the exact, official nomenclature published by the governing bodies. We provide the full tabular descriptions, ensuring that you understand the precise clinical nuances, including essential modifiers, bundling edits, and specific indicators required for clean claim submission and flawless clinical documentation.
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We highly recommend that you bookmark this page as your daily, primary resource for all your SNOMED-CT code search needs. We are deeply committed to maintaining this robust, frequently updated database as a permanent, free public utility for the global healthcare data community. Start typing your query into the search bar above to experience the absolute fastest, most reliable medical code lookup available on the internet today. Say goodbye to endless scrolling, frustrating page loads, and outdated indexes. Let our powerful, instantaneous search engine do the heavy lifting for your clinical documentation and coding operations. Whether you are aggressively searching by an exact code, a partial clinical description, or a broad medical category, our advanced tool delivers the exact SNOMED-CT code information you need to ensure total compliance and financial accuracy.