Could you please help understand how to populate fact table with Surrogate keys from dimensions.

I have the following fact table and dimensions:


ContractDim_SK ClaimDim_SK AccountingDim_SK ClaimNbr ClaimAmount


ContractDim_SK (PK) ContractNbr(BK) ReportingPeriod(BK) Code Name


TransactionNbr(BK) ReportingPeriod(PK) TransactionCode CurrencyCode (Should I add ContractNbr here ?? original table in OLTP has it)


CalimsDim_Sk(PK) CalimNbr (BK) ReportingPeriod(BK) ClaimDesc ClaimName (Should I add ContractNbr here ?? original table in OLTP has it)

My logic to load data into fact table is the following :

  1. First I load data into dimensions (with Surrogate keys are created as identity columns)
  2. From transactional model (OLTP) the fact table will be filled with the measures (ClaimNbr And ClaimAmount)

  3. I don’t know how to populate fact table with SKs of Dimensions, how to know where to put the key I am pulling from dimensions to which row in fact table (which key belongs to this claimNBR ?) Should I add contract Nbr in all dimensions and join them together when loading keys to fact?

What’s the right approach to do this? Please help, Thank you


The way it usually works:

  1. In your dimensions, you will have "Natural Keys" (aka "Business Keys") - keys that come from external systems. For example, Contract Number. Then you create synthetic (surrogat) keys for the table.
  2. In your fact table, all keys initially must also be "Natural Keys". For example, Contract Number. Such keys must exist for each dimension that you want to connect to the fact table. Sometimes, a dimension might need several natural keys (collectively, they represent dimension table "Granularity" level). For example, Location might need State and City keys if modeled on State-City level.
  3. Join your dim table to the fact table on natural keys, and from the result omit natural key from fact and select surrogat key from dim. I usually do a left join (fact left join dim), to control records that don't match. I also join dims one by one (to better control what's happening).

Basic example (using T-SQL). Let's say you have the following 2 tables:

Table OLTP.Sales
(   Contract_BK, 

Table Dim.Contract
(   Contract_SK,
    Contract Type)

To Swap keys:

    OLTP.Sales s LEFT JOIN Dim.Contract c ON s.Contract_BK = c.Contract_BK

-- Test for missing keys
    Contract_SK IS NULL

On a side note, I believe you have some mistakes in your design.

  • Report Period should be a separate dimension. Usually it's a calendar table with all date/period related attributes.
  • You certainly should not add ContractNbr to other dimensions. You already have this data in Contract dimension. That's how star schema works - contract attributes are always available to you via fact table. No need to replicate them.
  • I can't say for sure (not enough information) but suspect that dim Accounting and dim Claim might be incorrectly designed. If you intend to list your individual transaction descriptions and individual claim attributes, it's a mistake. It will result in dimensions that are as large as fact table. In a good design, fact table are "tall and skinny", while dimesions are "short and fat". I.e, in a fact table you should have few fields and lots of records, while in dims lots of fields and few records. Typically, if your dim's number of records is more than 10-20% of the fact table records, it's an indication of incorrect design. Correct way of handling this problem is to decompose claims into multiple dimensions, and leave claim number (order number, invoice number, transaction number, etc) as a "degenerate dimension" in your fact table. It's a bit of an advanced topic but you clearly need it for your case. Reason why it's important: if your dimensions are as tall as you fact table, you will have increasingly poor performance. If number of trasactions or claims is in the millions of records, it might be so slow that it will kill your design.

If you need more information on this, I recommend this book:

Star Schema The Complete Reference

[Edit to answer a follow-up question]:

I did not mean to remove ClaimNbr field from Claim dimension. I suggested that you don't need such dimension at all.

This might be a bit hard to digest, but consider the following. "Claim" is essentially a container for information (same as "Invoice", "Order", etc). If you move all usefull pieces of data to their relevant dimensions, there should be nothing left but an empty container.

For example, let's assume that your OLTP claim table contains the following fields: Claim Number, Report Period, Claim Description, Claim Name, Contract Number, Claim Amount. You can model them as follows:

  • Report Period: becomes business key for "Date" dimension
  • Contract Number: becomes business key for "Contract" dimension
  • Claim Amount: stays in fact table as numeric (fully-additive) fact

That leaves 3 fields: Claim Number, Claim Name and Claim Description. At this point, some designers create dimension "Claim" and park these fields there. As I mentioned before, this is a mistake, because you will then have as many records in your dimension as in your fact table, leading to serious problems.

A better design is to leave these fields in the fact table. Claim Number becomes a "Degenerate dimension" - a business key to "empty" (non-existent) dimension. Essentially, it's just an ID for an information container, like invoice number, order number, etc.

Claim Name and Claim Description also should stay in the fact table and become "non-numeric" (non-additive) facts. If you need to display them in a report, it's easy to do, and you can count them, do conditional logic on them, measure their length, etc.

Another way of looking at this: dimensions are usually used to "slice" (disect) facts BY some attribute/field. For example, "Sale Amount by Country", "Product Costs by Plant Location", etc. But you can't slice by descriptions, notes, or other free text - it makes no sense.

What if your descriptions or other claim attributes are structured? For example, if they are used to categorize/classify your claims? In that case, they are not a free text, they are an attribute that belongs to a dimension. For example, you can design dimension "Claim Type". Or "Claim Status". Etc. If there are too many of these little attribute fileds, you can combine them into what's called a "junk" dimension (aka "Profile" dimension), i.e., dimension "Claim Profile". Such designs are clean and efficient.

Read more on junk dimensions here

  • 1
    Good answer, but even when you've decomposed claim dimensions, you might end up with a dim that has the same number of rows as the fact, as per what I'd call the 'Claim Details' dimension (in this case name, description). Its not ideal, but it is 'off to the side' and not used for filtering often, so not that much of a problem. Kimball design tip 140 (easily googled) agrees with the idea of having a claim as an accumulating snapshot fact. I agree the claim number should be degenerate in the fact. The accounting dim does look wrong, could be a fact all of its own?
    – Rich
    Mar 3 '18 at 12:19
  • Thank you, @Rich. Regarding "Claim details" - I solve this problem by making description field a non-additive fact. This way, you can do some calcs on it, i.e, Count of Description, or I can write a measure that displays the description content. Such design increases size of the fact table, but it's a much lesser evil compared to 1:1 sized dimensions. If claim (order, invoice, etc) has lots of small details such as flags, I always park them into junk dimensions.
    – RADO
    Mar 3 '18 at 18:18
  • Thank you for your answer it helped a lot, Could you clarify to me please if I remove ClaimNbr from ClaimDimension how I would be able to join fatTable to ClaimDim if I don't have the natural Key (ClaimNbr) in ClaimDim? should I move them to a staging area join them there and once I move them to the final destination I just don't include ClaimNbr in the Dimension?
    – Rachel
    Mar 4 '18 at 16:50
  • @Rachel: I added an edit to my answer. Hope it clarifies it for you.
    – RADO
    Mar 6 '18 at 4:59
  • @rado What if the dimension table is scd2? There will be more than one combination of natural key?
    – Ravi
    Aug 16 '18 at 1:57

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