HP9825.COM
The Story of the Little Computer That Could!
HP: The Accidentally, On-Purpose Computer Company
HP introduces the world’s first 16-bit minicomputer, the HP 2116A, in 1966. It’s processor architecture will later serve as the basis for two generations of HP’s desktop calculators and computers. (Photo courtesy of the Hewlett-Packard Company.)
The story of how HP finally did enter the computer market involves a bit of Dave Packard subterfuge, a phantom HP subsidiary sporting an upside-down HP logo, the acquisition of a minicomputer company owned by an unlikely parent named Union Carbide, and a team of freshly hired, sandal-shod, long-haired, hippie-freak programmers who refuse to wear ties and work normal business hours.
You say DYNAC and I say Dymec
In 1956, Hewlett-Packard formed a wholly-owned subsidiary named DYNAC, Inc. with financing provided by contributions from HP executives. Depending on whose story you believe DYNAC was:
In any case, the name DYNAC was selected because the first two letters, “dy,” looked a lot like the lower-case letters “hp” turned upside down. Consequently, DYNAC’s logo was simply HP’s logo inverted. This move obviously saved some dollars on developing a new corporate identity. However, Westinghouse owned a DYNAC trademark so HP’s DYNAC subsidiary became DYMEC, Inc in 1958 (preserving the essential letters “d” and “y” in its name). DYMEC, Inc. ceased to be a subsidiary and became the Dymec Division of HP in 1959 and then becomes the Palo Alto Division in November, 1967.
At first, DYNAC/DYMEC/Dymec Division made components for the HP manufacturing divisions. However, at some point, DY*** became a sort of HP systems integrations house. It created test systems using HP test equipment and it designed and built any extra gear needed to complete these systems. As part of that charter, Dymec investigated the use of minicomputers as instrument controllers. Specifically, it experiments with DEC’s PDP-5 and PDP-8 minicomputers in 1964 and considers the specialized software and custom-designed interface hardware that would be needed to turn DEC’s minicomputers into instrument controllers. Dymec concludes that it needs a machine with more flexibility than currently available minicomputers.
Dymec + DSI = Cupertino
Meanwhile, having possibly found the fledgling DEC too expensive a purchase or realizing that Ken Olsen will always be too difficult to deal with, Dave Packard shops around for another minicomputer company to buy. He finds a very small and reasonably priced 5-person firm named DSI (Data Systems, Inc.) in Detroit. It’s owned by Union Carbide. When asked why Union Carbide owned a minicomputer design firm, HP Labs manager Barney Oliver replied, “We didn’t demand an answer to that question.” Apparently some executive at Union Carbide had a diversification brainstorm that didn’t pan out.
However, Bill Hewlett refuses to agree to the DSI purchase until Packard reframes DSI’s design as an “instrument controller” instead of a “minicomputer.” Ken Olsen pulled the same subterfuge on the US Government shortly after he founded DEC in 1957. Olsen discovered that Congress had passed a law against the purchase of any more computers until the ones the governmant already owned were 100% utilized. Nevertheless, a large division of the government needed to collect and analyze “seismic” data from “earthquakes” and therefore readily agreed to the purchase of DEC’s “programmed data processors,” which is precisely when and why the abbreviation PDP appeared on DEC’s minicomputers for the company’s first two decades.
Kay Magleby’s interest in the new technology of digital integrated circuits will lead him to become the architect of HP’s first minicomputer. (Photo courtesy of the Hewlett-Packard Company.)
However, in many ways, the HP 2116A ISA is quite un-RISC-like:
In about another five years, the HP 2116A’s instrumentation-oriented, I/O-intensive minicomputer architecture will serve HP’s desktop calculator and computer projects extremely well. Although it will not be used for the first-generation desktop calculator, the HP 2116A’s ISA will serve as the foundation for HP’s extremely successful second- and third-generation desktop calculators and computers.
Counterculture software engineers
Roy Clay leads the software development team for the HP 2116A. One of his philosophies is that the software must be ready with the hardware on the date of introduction and he’s willing to do whatever is necessary to make that goal a reality. Many members of his programming team are new graduates from Stanford’s computer science program. While the “real” engineers at the Dymec Division must wear regulation white shirts and ties (like all professionals of the day) and they are required to wear steel-toed shoes if they walk onto the manufacturing floor, Clay’s programmers prefer sandals, wear sport shirts, work at odd hours, and generally behave the way programmers have worked since computers were invented. They’re moved to a trailer with a leaky roof in the parking lot so as not to disrupt the other HP employees and they eventually end up in a basement with a separate entrance because of their odd working hours.
Hewlett-Packard introduces the HP 2116A minicomputer at the San Francisco Fall Joint Computer Conference in November, 1966 and discloses technical details of the machine in the March, 1967 issue of the Hewlett-Packard Journal. HP claims that the HP 2116A is the industry’s first 16-bit minicomputer but it wasn’t. Although the HP 2116A predates DEC’s hugely successful, 16-bit PDP-11 by some four years (the PDP-8 was a 12-bit machine), the DDP-116 minicomputer designed by Gardner Hendrie (who would subsequently join Data General and design the microNova), and introduced by the Computer Control Company (later bought by Honeywell) in April of 1965, was actually the first commercial 16-bit minicomputer to hit the market.
HP’s 2116A is the company’s first product to incorporate digital integrated circuits in its design. Significantly, the HP 2116A’s software (FORTRAN compiler, assembler, linker, loader, operating system, and I/O drivers) and hardware are both ready at the time of introduction, which is not the norm for the computer industry of the day. In general, computer vendors would roll out the hardware and the software would follow some time later.
It’s not a computer, it’s an instrument controller
The interior bay of the HP 2116A holds 16 interface cards (optionally 48). (Photo courtesy of the Hewlett-Packard Company)
The HP 2116A was clearly designed as an interface engine, much as it was first envisioned by Magleby and Stoft. In addition to the large number of card slots devoted to I/O, its internal architecture further aided I/O through hard-wired, prioritized interrupt vectors. Each of the HP 2116A’s interface slots had a permanently assigned, hard-wired interrupt-vector location in the minicomputer’s memory space. An interface card that asserted its interrupt signal could activate the appropriate interrupt service routine in microseconds (assuming its priority was the highest active interrupt at the time).
Other minicomputers of the day used polled I/O software routines and might require a millisecond or more to initiate an I/O transfer after the hardware made a service request. Millisecond response times might be fine for buffered peripherals like printers, but they’re far too slow for real-time data-acquisition systems. If even faster I/O was required, the HP 2116A would soon support direct-memory-access (DMA) I/O transfers at 1.2 Mbytes/second, which was 10,000 times faster than it’s conventional transfer rates.
Paul Ely’s short article in the March, 1967 issue of Hewlett-Packard Journal introduces the new HP 2116A minicomputer and illustrates its use as an instrument controller with this block diagram of an automated test system for measuring transistor parametrics using the HP 2116A to control a variety of other HP equipment. (Photo courtesy of the Hewlett-Packard Company.)
By 1978, HP is the fourth largest minicomputer manufacturer, trailing only DEC, IBM, and Data General. The 16-bit HP 21xx architecture will live for more than 20 years, making HP one of the minicomputer vendors that truly succeeded, in spite of Bill Hewlett’s initial reluctance at entering the market and the company’s subsequent, narrow focus on instrumentation control (until the market forced it to broaden its horizons).
However, the summer of 1965 has ignited another round of developmental brainstorming in Barney Oliver’s R&D lab. Two unrelated but fortuitous visits by wandering computational visionaries seeking homes for their radical ideas have planted the seeds of a desktop-computer revolution. The resulting product will be wonderful but quite strange—so strange in fact that the “maverick” Cupertino Division and its counterculture engineers will want nothing to do with the first-generation machine spawned by this work. Thus begins the story of how HP’s instrument division in Loveland, Colorado got the HP 9100 desktop calculator.
Source materials for this Web page about the HP 2116A minicomputer include:
Todd Poyner, “25 Years of Real-Time Computing,” REAL-TIME Interface, An Interex Publication, August, 1991, available at www.interex.org/tech/csl/RTE/archive/poyner1.htm.
Kip Crosby, “HP’s Early Computers, Part One: An Interview with Barney Oliver,” The ANALYTICAL ENGINE, Journal of the Computer History Association of California, Volume 2, Number 3, May 1995.
Leslie Jaye Goff, “A new machine, a new way,” Computerworld, May 3, 1999.
Leslie Goff, “1966: HP’s radical move,” Computerworld, July 6, 1999.
Paul Ely, Jr., “The Engineer, Automated Network Analysis and the Computer—Signs of Things to Come,” Hewlett-Packard Journal, March, 1967.
Kay B. Magleby, “A Computer for Instrumentation Systems,” Hewlett-Packard Journal, March, 1967.
Donald P. Kenney, “MINICOMPUTERS, Low-Cost Computer Power for Management,” AMACOM, 1978.
David Packard, “The HP Way, How Bill Hewlett and I Built Our Company,” HarperCollins, 1995.
Kenneth Jessen, “How it all began, Hewlett-Packard’s Loveland Facility,” J. V. Publications, Loveland, Colorado, 1999.
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All text Copyright 2004 to 2017 - Steve Leibson