Tag Archives: USTRING

Clarion Unicode preview — refreshed beta build (14313)

Clarion · Unicode Preview · Beta Refresh

Refresh build 14313 — a modern report previewer, Unicode reports by default, a DATETIME type for SQL, and the wide file-name family complete

A bigger drop. With EMF pages new functionality is within reach, and the first of it is a new report previewer: search with highlighted hits, page thumbnails, marks, print or save the marked pages, copy text off the page — on a wide report all of it Unicode. For this beta release every existing application picks the previewer and Unicode (EMF) reports up automatically from the templates on its next generate, so de facto every app gets EMF reports; a hand-coded program reaches the same with the new compiler pragma define(report_unicode=>on). Tell us how that lands on your reports and your third-party report tools — that default is yours to confirm. A new DATETIME type carries a SQL timestamp to 100 nanoseconds through the compiler, the dictionary, the import wizard and every SQL driver. RUN() and COMMAND() go wide, closing the file-name family. Plus the fixes from beta testers’ reports in the forums. Already testing? Everything below is new since build 14258.

Reports ReportPreviewClass · Unicode reports by default · report_unicode define · PROP:Unicode Data DATETIME type · @DT picture · DateTimeUtil · import wizard checkbox Runtime RUN / COMMAND wide · CLIB wide twins · ALL() negative count IDE IMAGE field picker · no BLOB list columns · property search

Highlights of this drop — then the full tester guide, whose “What’s new” section lists everything that changed since you last read it.

A modern report previewer — reached through EMF pages

ReportPreviewClass: text search across every page with the hits highlighted (Ctrl+F, F3, match case), a thumbnail sidebar, page marks with Print Marked and Save Marked Pages As, Fit Page and Ctrl+plus/minus zoom, Shift+drag to copy the text under the band, layout remembered in the INI, the index built on its own thread so a 1,000-page report opens at once. On a wide report the search is Unicode. It is the default for new apps, and a Print Previewer prompt that still reads PrintPreviewClass generates the new class on the next generate; “Keep the classic PrintPreviewClass previewer” opts out.

For this beta release, reports print Unicode (EMF) by default

The new global “Unicode reports” check (on by default for this beta, so we hear how it lands) makes each Report procedure set Report{PROP:Unicode} = True as its report opens — USTRING fields, wide captions and emoji print as typed on .emf pages, error 546 stops, the PDF/HTML/TXT targets register their wide face; a per-procedure “Unicode pages” prompt opts one report out. The same check writes the compiler’s report_unicode define into the project, so hand-coded REPORT structures carry the UNICODE attribute too (PRAGMA('define(report_unicode=>on)') in a hand-coded module). PROP:Unicode is documented as the run-time face of the attribute. Watch for: a third-party page tool that read .wmf files sees .emf now.

DATETIME: a date and a time in one value, to 100 ns

A new data type — seconds since the Clarion day zero with seven decimal places, the precision of SQL Server’s datetime2(7). Compares, sorts, keys and does arithmetic in seconds; zero is blank. In a SQL table it reads and writes the backend’s timestamp column and CREATE() declares it: datetime2(7), timestamp(6), SQLite ISO text, Oracle TIMESTAMP(7); a VIEW filter on it is evaluated server-side. The @DT@DT7 picture formats and enters it, DateTimeUtil converts to and from DATE and TIME (SetNow reads the precise clock), the Dictionary Editor offers the type, and the SQL import wizards create it for timestamp columns when “Import date-time columns as DATETIME” is checked (off by default — nothing changes for existing dictionaries).

RUN() and COMMAND() wide — the file-name family is complete

RUN() takes a USTRING command line: a program in a folder outside the Windows codepage is located and started exactly and its parameters travel as typed; an ANSI-only USTRING takes the old path byte-for-byte. COMMAND() no longer shifts every parameter by one for a program that lives in such a folder (the folders from the forum). CLIB.CLW stays narrow by design, with four exported wide twins (_fnsplitW, _fnmergeW, _mkdirW, _accessW). With EXISTS, COPY/RENAME/REMOVE, DIRECTORY, FILEDIALOG and the PATH family already wide, that closes the family.

Designers and dictionary, from beta testers’ reports

The Window Designer’s IMAGE gets the dictionary-field picker (BLOB and BINARY MEMO fields, the ones IMAGE,USE() accepts), and dropping a BLOB onto a window creates an IMAGE bound to it. A BLOB is never offered as a list-box column, and an app that already has one stops generation with a plain sentence instead of the compiler’s “Illegal parameter for LIKE”. The property-pane search is case-insensitive in every designer, and UNICODE is coloured as an attribute in the editor.

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Fixes from the forums: ALL(), the PDF class, datetime2 DDL

ALL() with a negative count returns ” again instead of “Clarion RTL internal exception” 0B000000. ABPRPDF.CLW compiles without warnings, and a real defect went with them: a wide report text longer than 99 units was cut in the PDF (150 units drew as 15). MS SQL CREATE of the legacy datetime group emits datetime2(7) on SQL Server 2008 and later — “Specified scale 8 is invalid” is gone.

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F1 help, current for this drop

The IDE help (ClarionHelp.chm) carries new topics for DATETIME, the Date-Time Pictures, ReportPreviewClass, PageTextIndexClass and the Report template’s Preview Options; PROP:Unicode and the report_unicode define on the REPORT pages; the “Unicode reports” and “Unicode pages” prompts; and the three new stock icons ICON:PageUp, ICON:PageDown and ICON:Clear.

Full tester guide — mental model, conversion rules, DCT import table, screen controls, reports, blobs, SQL / SQLite / text drivers / TopSpeedW / Memory / IP, recipes, and what to focus on when testing. The guide’s “What’s new” section lists everything in this drop; changes are also flagged inline with dated “beta refresh” notes.

Open the full Unicode Tester Guide

Report tool authors — the wide generator surface (IReportGeneratorW), format detection, the EMF record set, transition paths per integration style, and now the PageTextIndexClass text index the new previewer searches with, usable by your own viewer as-is:

EMF Page Files — Transition Note

Standalone pages (best full-width). Everything described there is implemented unless marked as a known limitation — if you see something different, tell us on the beta forum.

Clarion Unicode preview — refreshed beta build (14258)

Clarion · Unicode Preview · Beta Refresh

Refresh build 14258 — the designers keep your Unicode, the fixes from four beta threads, and the wide path family

A shorter drop, built from the beta forum. The Window and Report Designers accept every U'' spelling and no longer rewrite it into a raw glyph; the Window Previewer can keep the generated program; DROP lists and COMBOs take a wide FROM at runtime; INSTRING() searches backwards from past the end; FILEDIALOG() opens on a Unicode folder; and the porting notes for SIZE() are in the help. Threads 47, 54, 57 and 60, closed. Already testing? Everything below is new since build 14234.

IDE U” hex literals in the designers · ANSI files keep U” · Save Preview Program Runtime DROP/COMBO wide FROM · INSTRING · FILEDIALOG Help SIZE() porting notes · INSTRING start rule

Highlights of this drop — then the full tester guide, whose “What’s new” section and dated “beta refresh” markers flag exactly what changed since you last read it.

Designers: every U” spelling works, and your Unicode stays Unicode

The Window and Report Designer parse U'<26DDh>', U'<1F600h>' and {n} repeats exactly like the compiler — build 14234 refused a window with a hex literal. And a designer opened from an ANSI .clw now writes wide text back as a U'' literal (decimal units) instead of a raw glyph that forced the save-as-UTF-8 prompt; UTF-8 sources keep the glyph as before.

DROP lists and COMBOs: a runtime wide FROM

?List{PROP:From} = U'…' on a LIST,DROP() or a COMBO keeps its characters — in 14234 that one property took the narrow path, so a declared FROM(U'…') worked and the runtime write showed ?. Reminder for continued FROM strings: put U on every piece.

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INSTRING backwards from past the end, and two porting notes

INSTRING(sub, s, -1, SIZE(s)) now finds the last match on a CSTRING or USTRING (those push only their used length, so a start past the end returned 0). Porting notes in the help: SIZE() of a USTRING is bytes, so a Windows API’s character count is SIZE(v)/SIZE(v[1]) — right for every string type — never SIZE(v).

Window Previewer: Save Preview Program

A second checkable item in the Window menu, under Unicode Preview: latched on, the generated preview program, its project and exe move into .WinPreview\ in the project folder with the injection include beside them, so File ▸ Open builds and runs it as-is; a preview that fails to compile still keeps its source. Both latches are menu items only — the toolbar keeps just the Preview button.

FILEDIALOG positioned; the “Internal error 01” dialog is gone

FILEDIALOG() with FILE:Directory and a USTRING start folder opens with the selection on that folder even when its name is outside the Windows codepage. The “Output corrupted stack, wsldebug.cpp line 412” dialog was the release diagnostic logger misfiring; it now logs to C120LOG.TXT and carries on, so what you see next is the real fault.

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PATH, SETPATH, LONGPATH and SHORTPATH are wide

A USTRING folder or file name is resolved in its exact characters and the result comes back wide, so a folder whose name lies outside the Windows codepage can be entered with SETPATH and read back with PATH() (the earlier drop best-fit it to ? and SETPATH failed with error 3). The no-argument forms return the current directory exactly; a STRING argument or receiver gets the same bytes as always. With EXISTS, COPY/RENAME/REMOVE, DIRECTORY and FILEDIALOG already wide, only RUN remains in the file-name family.

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F1 help, current for this drop

The IDE help (ClarionHelp.chm) carries the INSTRING start rule with a SIZE(cstring) example, the USTRING porting note, the previewer’s second latch, and a USTRING note on each of the PATH, SETPATH, LONGPATH and SHORTPATH topics.

Full tester guide — mental model, conversion rules, DCT import table, screen controls, reports, blobs, SQL / SQLite / text drivers / TopSpeedW / Memory / IP, recipes, and what to focus on when testing. The guide’s “What’s new” section lists everything in this drop; changes are also flagged inline with dated “beta refresh” notes.

Open the full Unicode Tester Guide

Report tool authors — the wide generator surface has shipped (IReportGeneratorW — six methods, opt-in, zero break for existing implementors). Format detection, the EMF record set, transition paths per integration style:

EMF Page Files — Transition Note

Standalone pages (best full-width). Everything described there is implemented unless marked as a known limitation — different behavior is exactly what we want to hear about.

USTRING — Unicode that feels like Clarion

Clarion · Unicode Preview

USTRING — Unicode that feels like Clarion

Wide text end to end: declare it, type it, store it, browse it. No new programming model. No special “Unicode mode.” If you already know CSTRING, you already know USTRING — and your existing ANSI apps stay byte-identical.

SQL MSSQL · ODBC · PostgreSQL · SQLite ISAM TopSpeedW · ASCII · BASIC · DOS UI ENTRY · TEXT · COMBO · captions · blobs

A few highlights for Clarion developers evaluating this build — then the full tester guide (declaration rules, import maps, backends, recipes, what to poke at).

Hands-off by design

Pick USTRING in the DCT, USE it on a control, PUT it to SQL. No conversion buffers, no “wide mode” flag, no per-screen ceremony. It just works the way Clarion always did.

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All SQL backends speak Unicode

MSSQL, ODBC, PostgreSQL, and SQLite: USTRING(n) ↔ NVARCHAR(n-1) (logical length round-trips). Keys, GET, SET/NEXT, and bound WHERE values stay wide — never narrowed literals.

TopSpeed goes wide

Classic TPS is untouched. New driver: DRIVER('TopSpeedW'), .tpsw files, USTRING fields + UNICODE blobs, keys that work, and clean version rejects instead of silent mojibake.

A blob is a field

On SQL there is no MEMO(n) — long text is the blob. TEXT,USE(blob) displays and edits; IMAGE,USE(blob) displays. Window binding ships today; Report is the same mental model (next surface).

Type your language — everywhere

Source (UTF-8 / UTF-16), Window/Report designers, DCT messages/tips, IME, emoji panel, clipboard. Captions and free-form ENTRY/TEXT/COMBO carry exact UTF-16 on any system codepage.

ANSI apps stay byte-identical

No USTRING? No wide designer text? Rebuild and ship — same binary behavior as before. Opt-in tokens (e.g. PostgreSQL UNICODECONNECT=1) never change default connects.

Import maps that tell the truth

Import Tables: nvarchar → USTRING, ntext / nvarchar(max) → UNICODE memo/blob, binary max → BINARY blob — attributes already ticked. Data Browser edits wide without narrowing.

Surrogate-safe editing

Emoji and non-BMP text edit as atomic characters on wide ENTRY/COMBO. Color emoji via DirectWrite where available; ordinary edits never leave half a pair behind.

Full tester guide — mental model, conversion rules, DCT import table, screen controls, blobs, SQL / SQLite / text drivers / TopSpeedW, recipes, and what to focus on when testing.

Open the full Unicode Tester Guide

Standalone page (best full-width). Everything described there is implemented unless marked as a known limitation — different behavior is exactly what we want to hear about.

Understanding USTRING: A Deep Dive into Clarion 12’s UTF-16 Implementation

This post focuses on practical details and what they mean for your day-to-day development, with an eye toward where we’re headed next.

In our previous article, we announced the USTRING data type was coming back, and its intended role in Clarion 12’s Unicode support. Now, let’s explore the implementation details that will help you work more effectively with the USTRING.

USTRING is UTF-16: What This Means for You

At its core, the USTRING data type uses UTF-16 encoding, allocating two bytes per character. This architectural decision provides several key advantages:

  • Native Windows support: Windows internally uses UTF-16 for all Unicode operations, making USTRING integration seamless
  • Fixed-width benefits: Most common characters (including all Latin, Cyrillic, Greek, and CJK characters in the Basic Multilingual Plane) use exactly 2 bytes, simplifying string indexing
  • Complete Unicode coverage: Through surrogate pairs, UTF-16 can represent every Unicode character
  • Predictable memory usage: Easy calculation of memory requirements
Name     USTRING(21)              ! 21-character Unicode string
Company  USTRING('SoftVelocity')  ! Initialized with a value
Phone    USTRING(@P(###)###-####P) ! Formatted with picture token
MyStr    USTRING(20)              ! 20 characters available

When you declare USTRING(20), you’re reserving space for 20 characters plus a null terminator. Internally, this allocates 42 bytes (21 characters × 2 bytes each).

Memory Layout: USTRING(20)

Declaration:  USTRING(20)
Allocation:   [    40 bytes for 20 characters    ][2 bytes null]
              |<────────── 20 chars × 2 bytes ─────>|
Total Size:   42 bytes

Example with "Hello":
Position:     1    2    3    4    5    6-20  21
Character:    H    e    l    l    o    (empty) \0
Bytes:       [H ][e ][l ][l ][o ][  ...  ][\0]
              2   2   2   2   2      30      2
                                          WCHAR(0)
              <─── 40 bytes for data ────> <2>

Total: 42 bytes allocated (40 for characters + 2 for null terminator)

Important: The null terminator WCHAR(0) occupies 2 bytes because it’s a wide character, just like every other character in the string. This is how functions like lstrlenW know where the string ends—they scan for this 2-byte null value.

Dual Character Set Support: The Best of Both Worlds

One of USTRING’s practical strengths is transparent handling of both Unicode and ANSI content. You can freely mix Unicode literals and ANSI strings in your code:

MYUSTR  USTRING(50)

CODE
  MYUSTR = u'Α Ω'            ! Greek Unicode characters
  MYUSTR = 'Regular Text'    ! ANSI text works too
  MYUSTR = u'Mix: ' & 'Α Ω' ! Concatenate both types

The runtime handles conversions automatically, respecting the current code page settings. When working with international applications, you can set the code page and locale to ensure proper character handling:

SYSTEM {PROP:Codepage} = 1253   ! Greece
SYSTEM {PROP:Locale} = 1032     ! Greece

LEN() vs SIZE(): A Critical Distinction

This is where developers first encounter USTRING’s two-byte nature. The distinction between LEN() and SIZE() directly reflects the UTF-16 implementation:

MYUSTR  USTRING(20)
L       LONG
S       LONG

CODE
  MYUSTR = u'Α Ω'            ! 3 Unicode characters
  L = LEN(MYUSTR)            ! L = 3 (character count)
  S = SIZE(MYUSTR)           ! S = 40 (20 characters × 2 bytes)

LEN() returns the logical length—the number of characters actually stored in the string. This is what you typically care about when processing text.

SIZE() returns the allocated byte capacity. For a USTRING(20), SIZE() always returns 40, regardless of how many characters you’ve stored. This represents the maximum storage available.

Understanding this distinction matters when:

  • Allocating buffers for string operations
  • Interfacing with external APIs that expect byte counts
  • Optimizing memory usage in data structures
  • Working with file I/O operations

How SIZE() Actually Works

For fixed-size declarations like USTRING(20), SIZE() is calculated by the Clarion compiler at compile-time. The compiler knows the capacity is 20 characters and generates code that returns 20 × 2 = 40 directly—no runtime function call needed.

This is why SIZE() is so fast: it’s just a constant value, not a calculation that happens when your code runs.

When LEN() and SIZE() Differ: A Practical Example

UserInput  USTRING(100)      ! Allocated capacity: 100 chars
Bytes      LONG
Chars      LONG

CODE
  UserInput = ''             ! Empty string
  Chars = LEN(UserInput)     ! Chars = 0 (no content)
  Bytes = SIZE(UserInput)    ! Bytes = 200 (capacity still allocated)

  UserInput = u'Hi'          ! Short string
  Chars = LEN(UserInput)     ! Chars = 2 (actual content)
  Bytes = SIZE(UserInput)    ! Bytes = 200 (capacity unchanged)

  ! Key insight: SIZE() never changes after declaration
  ! LEN() reflects actual content

Memory Allocation: Understanding the 2:1 Ratio

When you declare a USTRING, the actual memory allocated is double the character count you specify:

Small   USTRING(10)              ! Allocates 20 bytes (10 × 2)
Medium  USTRING(100)             ! Allocates 200 bytes (100 × 2)
Large   USTRING(1000)            ! Allocates 2000 bytes (1000 × 2)

Right-Sizing Your Strings

Choose appropriate sizes to avoid wasting memory. Here’s what oversizing costs:

! Good - sized appropriately
FirstName  USTRING(50)            ! 100 bytes allocated

! Wasteful - unnecessarily large
UserName   USTRING(500)           ! 1000 bytes allocated
                                  ! If only ~50 chars used: 100 used, 900 wasted

Comment    USTRING(5000)          ! 10,000 bytes allocated
                                  ! If only ~100 chars used: 200 used, 9,800 wasted

When Memory Size Actually Matters

Understanding when to worry about USTRING memory overhead:

! Scenario 1: Single string - overhead is negligible
CustomerName  USTRING(100)     ! 200 bytes total
! Impact: Minimal - 100 extra bytes compared to ANSI

! Scenario 2: Large collections - overhead multiplies
CustomerQueue QUEUE
Name            USTRING(100)   ! 200 bytes
Address         USTRING(200)   ! 400 bytes
City            USTRING(50)    ! 100 bytes
              END

! Impact with 100,000 records in queue:
! USTRING: 70,000,000 bytes (70 MB)
! STRING:  35,000,000 bytes (35 MB)
! Difference: 35 MB - this is where sizing matters!

! Or with an array:
CustomerArray USTRING(100), DIM(100000)  ! 20,000,000 bytes (20 MB)
! vs STRING(100), DIM(100000)            ! 10,000,000 bytes (10 MB)

Rule of thumb: For individual strings, use generous sizes. For large queues, arrays, or tables, size more carefully.

Design-Time vs Runtime Allocation

! Design-time: Fixed size declared in source
MyStr  USTRING(100)          ! 200 bytes allocated at compile time

! Runtime: Dynamic allocation with NEW
MyStr &USTRING               ! Reference to dynamically allocated string
CODE
  MyStr &= NEW USTRING(100)  ! 200 bytes allocated at runtime

Design-time declarations have a maximum size of 4MB, while runtime allocations can be sized dynamically based on your application’s needs.

Working with Unicode Literals

When initializing or assigning to a USTRING, use the U or u prefix for Unicode literals:

MyStr USTRING(50)
CODE
  MyStr = U'Ω α β'     ! Correct - U prefix for Unicode
  MyStr = u'Ω α β'     ! Also correct - lowercase works too
  MyStr = 'Ω α β'      ! Works but may not preserve Unicode properly

Practical Implications for Your Code

Character Access is Read-Only on Assignment

You can read individual characters using slice syntax, but cannot assign to them:

C = MyStr[5]        ! Read character at position 5 - ALLOWED
MyStr[1] = 'A'      ! ERROR - Not allowed, creates invalid string

This restriction maintains string integrity in the UTF-16 implementation.

Use LEN() for Logic, SIZE() for Memory

! Correct usage
IF LEN(UserInput) > 0            ! Check if string has content
  ! Process input
END

! Memory allocation calculation
BytesNeeded = SIZE(MyStr)        ! Get total allocated bytes

Current Limitations

The current implementation doesn’t support Unicode strings in these specific contexts:

  • EVALUATE statement
  • MATCH built-in function
  • STRPOS built-in function

These are implementation-specific constraints that may be addressed in future releases.

Working Example: Practical USTRING Usage

MAP
  MODULE('API')
    GetSystemInfo(*LONG, *LONG), PROC, RAW, PASCAL, NAME('GetSystemInfo')
  END
END

MyName    USTRING(50)
MyCompany USTRING(100)
FullInfo  USTRING(200)
CharCount LONG
ByteCount LONG

CODE
  ! Assign Unicode content
  MyName = u'Αλέξανδρος'       ! Greek name
  MyCompany = u'SoftVelocity'   ! Company name
  
  ! Concatenate strings
  FullInfo = MyName & u' - ' & MyCompany
  
  ! Get character count and byte size
  CharCount = LEN(FullInfo)     ! Actual characters in string
  ByteCount = SIZE(FullInfo)    ! Total bytes allocated
  
  ! Display results
  MESSAGE('Name: ' & MyName & |
          '|Characters: ' & CharCount & |
          '|Bytes Allocated: ' & ByteCount)

Behind the Scenes: What Happens When You Concatenate

When you write a string expression like this:

Result = FirstName & ' ' & LastName

The Clarion runtime evaluates it using a string stack—a temporary workspace for building the final result. Here’s the step-by-step process:

String Expression Evaluation

Step 1: Push FirstName onto stack       → Stack: [FirstName]
Step 2: Push ' ' onto stack             → Stack: [FirstName][' ']
Step 3: Concatenate top 2 items         → Stack: [FirstName ]
Step 4: Push LastName onto stack        → Stack: [FirstName ][LastName]
Step 5: Concatenate top 2 items         → Stack: [FirstName LastName]
Step 6: Pop result into Result variable → Result gets final string

This stack-based approach doesn’t create temporary variables that need cleanup. The runtime handles all intermediate strings automatically, and they vanish when the expression completes.

Why this matters for you:

  • Write complex expressions freely – No performance penalty for chaining operations
  • No memory leaks – Intermediate results are cleaned up automatically
  • Thread-safe by design – Each thread has its own string stack, no locking needed
  • Efficient memory use – Stack allocation is faster than heap allocation for temporaries

Performance Implication

The string stack is why expressions like Name = FirstName & ' ' & MiddleName & ' ' & LastName don’t create memory leaks or slow down your application. Each intermediate result (FirstName & ' ', etc.) exists only temporarily on the stack and is automatically cleaned up.

Best practice: Write natural, readable string expressions. The runtime is optimized for this pattern.

Common Pitfalls and How to Avoid Them

Pitfall 1: Using SIZE() When You Mean LEN()

! WRONG - This won't work as expected
Name  USTRING(50)
CODE
  Name = u'John'
  IF SIZE(Name) > 10         ! Always TRUE (SIZE is 100, not 8)
    ! This always executes
  END

! CORRECT - Use LEN() for content checks
  IF LEN(Name) > 10          ! FALSE (LEN is 4)
    ! This executes only when needed
  END

Pitfall 2: Buffer Size Confusion

! WRONG - Allocating based on character count for bytes
Name     USTRING(50)
Buffer   STRING(LEN(Name))    ! Too small! Only 50 bytes, need 100

! CORRECT - Use SIZE() for byte allocations
Buffer   STRING(SIZE(Name))   ! Correct: 100 bytes

Pitfall 3: Forgetting the U Prefix

Greek  USTRING(20)
CODE
  ! INEFFICIENT - ANSI string converted to Unicode at runtime
  Greek = 'Αθήνα'

  ! EFFICIENT - Direct Unicode assignment, no conversion
  Greek = u'Αθήνα'

Migration from STRING to USTRING: Real Examples

Example 1: Buffer Sizing

! Before (ANSI STRING)
Name    STRING(50)           ! 50 bytes
Buffer  STRING(SIZE(Name))   ! 50 bytes

! After (USTRING)
Name    USTRING(50)          ! 100 bytes (50 × 2)
Buffer  STRING(SIZE(Name))   ! 100 bytes - SIZE() handles it correctly

Example 2: Loop Iterations

! Before (ANSI STRING)
Text  STRING(100)
I     LONG
CODE
  LOOP I = 1 TO LEN(Text)    ! Good - use LEN() not SIZE()
    ! Process Text[I]
  END

! After (USTRING)
Text  USTRING(100)
I     LONG
CODE
  LOOP I = 1 TO LEN(Text)    ! Same - LEN() still correct
    ! Process Text[I]
  END
  ! KEY: LEN() works the same way for both types!

Example 3: API Calls

! Before (ANSI STRING)
Buffer  STRING(1000)
Size    LONG
CODE
  Size = SIZE(Buffer)        ! 1000 bytes
  ! Pass Size to Windows API expecting byte count

! After (USTRING)
Buffer  USTRING(1000)
Size    LONG
CODE
  Size = SIZE(Buffer)        ! 2000 bytes (1000 × 2)
  ! SIZE() correctly returns byte count for Unicode APIs

Migration Considerations

When moving existing ANSI string code to USTRING:

  • Use LEN() for character-based logic, not SIZE()
  • Add U prefix to string literals containing Unicode characters
  • Test with international character sets if your application supports them
  • Be aware of the EVALUATE, MATCH, and STRPOS limitations
  • Review buffer size calculations—you may need double the byte count you used with ANSI

Looking Forward

The USTRING implementation provides a solid foundation for Unicode support while maintaining the Clarion language’s characteristic simplicity. The UTF-16 encoding, dual character set support, and clear LEN/SIZE distinction give you the tools needed for modern, international applications.

Key takeaways:

  • USTRING uses UTF-16 encoding (2 bytes per character)
  • Automatic conversion between ANSI and Unicode character sets
  • LEN() returns character count; SIZE() returns byte count
  • USTRING(n) allocates n × 2 bytes of memory
  • Code page awareness ensures proper locale handling
  • Runtime uses string stack for efficient expression evaluation

Thanks for being part of the Clarion community. If you try this out, let us know what you think — and stay tuned, there’s more to come.


Related: Clarion 12 Beta: USTRING Returns ANSI & Unicode