Intel 8080, 8085 manual Chapter

Page 11

CHAPTER 21

~SEMBLER CONTROLS

Introduction to Assembler Controls

Assembler controls allow you to specify the input!output files or devices to be used by the assembler and whether list or object files (or portions of these files) are to be generated by the assembler. Controls can be specified at two levels:

In commands specified at assembly time

As control lines embedded throughout your source file

The latter allows selective control over sections of your program. For example, you might want to suppress the assembly listing for certain sections of your program, or to cause page ejects at specific places.

Primary and General Controls

Controls are classified as primary and general. Both classes of controls can be set when the assembler is run or in source file control lines. However, source file control lines containing primary controls must be inserted before the first line of comments or source code. General controls can be respecified at any time.

The ISIS-II assembler allows primary controls to be specified only once. This applies to controls specified in assembly-time command lines, to control lines embedded in your source code, or combinations of the two.

Specifying Controls

Controls can be specified using either upper-case or lower-case characters.

If a control is specified incorrectly in an assembly-time command, the entire com- mand is ignored and must be reentered.

If a control is specified incorrectly in a source code control line, the incorrect control and all controls following it in the line are ignored.

Summary of Controls

The following list shows the controls available, their basic functions, and whether they are primary or general (PIG). Default controls are italicized. The remainder of this chapter describes each control in greater detail.

Control

PIG

Function Area

OBJECTINOOBJECT

P

Object File

OEBUGINOOEBUG

P

Object File

PRINTINOPRINT

P

Assembly Listing

CONO INOCONO

G

Assembly Listing

LlSTINOLIST

G

Assembly Listing

SYMBOLS INOSYMBOLS

P

Assembly Listing

XREFINOXREF

P

Cross-Reference Listing

PAGING INOPAGING

P

listing Format

2-1

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Contents ISIS-II 8080/8085 Macro Assembler Operatorsmanual Scope Prefacei Page Contentsi Page ISIS-II Assembler Environment Chapter Assembler OverviewInput/Output Files Assembler Files Symbol-Cross-Reference FilePage Chapter ISIS·IIAssembler Controls Primary Controls General Controls ISIS-II Assembler Control Lines Page Activation Sequence Sample AssemblyAsmbo MBADD.SRC Symbols Xref Macrofile Reducing Assembly Time Page Chapter List File Formats List File Formats 808O/808S Assembler Assembly Output Line Symbol Table Listing Cross-Reference Output Line Symbol-Cross-Reference ListingChapter PL/M Linkage Conventions Page Relocatable Programs Absolute ProgramsPage Error Codes Error Detection and ReportingError Messqes ISIS-II Error Messages FOCC= OOnn Request for Readerscomments 111111
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8080, 8085 specifications

The Intel 8085 and 8080 microprocessors were groundbreaking innovations in the world of computing, paving the way for future microprocessor development and personal computing.

The Intel 8080, introduced in 1974, was an 8-bit microprocessor that played a fundamental role in the early days of personal computing. With a 16-bit address bus, it had the capability to address 64 KB of memory. Running at clock speeds of 2 MHz, the 8080 was notable for its instruction set, which included 78 instructions and 246 opcodes. It supported a range of addressing modes including direct, indirect, and register addressing. The 8080 was compatible with a variety of peripherals and played a crucial role in the development of many early computers.

The microprocessor's architecture was based on a simple and efficient design, making it accessible for hobbyists and engineers alike. It included an 8-bit accumulator, which allowed for data manipulation and storage during processing. Additionally, the 8080 featured registers like the program counter and stack pointer, which facilitated program flow control and data management. Its ability to handle interrupts also made it suitable for multitasking applications.

The Intel 8085, introduced in 1976, was an enhancement of the 8080 microprocessor. It maintained a similar architecture but included several key improvements. Notably, the 8085 had a built-in clock oscillator, simplifying system design by eliminating the need for external clock circuitry. It also featured a 5-bit control signal for status line management, which allowed for more flexible interfacing with peripheral devices. The 8085 was capable of running at speeds of up to 3 MHz and had an extended instruction set with 74 instructions.

One of the standout features of the 8085 was its support for 5 extra instructions for stack manipulation and I/O operations, which optimized the programming process. Additionally, it supported serial communication, making it suitable for interfacing with external devices. Its 16-bit address bus retained the 64 KB memory addressing capability of its predecessor.

Both the 8080 and 8085 microprocessors laid the groundwork for more advanced microprocessors in the years that followed. They demonstrated the potential of integrated circuits in computing and influenced the design and architecture of subsequent Intel microprocessors. Their legacy endures in the way they revolutionized computing, making technology accessible to a broader audience, and their influence is still felt in the design and architecture of modern microprocessors today.