Showing posts with label phase 2. Show all posts
Showing posts with label phase 2. Show all posts

Friday, November 11, 2011

Auditory Environment Filter - Phase II

Auditory Environment Filter

The act of hearing is only psychologically filterable, the body lacks physically any means to do so. The spaces we traverse every day are dense with sound - the dull hum of an HVAC system, car traffic, pedestrian conversation - and the sources of these sounds are often beyond our control. The solution to attenuating the sound that enters the ear is most commonly by the use of headphones. The personal media player grants anyone instant circumvention of their sound environment with their music (or radio show, audio book, etc) of choice piped directly from device, through headphones, directly into the ear canal. There’s a handy volume control in case things get too loud and buttons to select the next program. Who needs the noise of the morning commute when you can listen to Ira Glass? This is not, however, an attenuation of soundspace but a replacement of that which is unattenuable and beyond control. Further, it is an act of isolation. Headphones have a single user, the attached player device tethered to a single operator, controlling their auditory input based on their personal tastes at the moment, without any interjection or the fear of complaint from anyone else. While I don’t think it’s possible to control your soundspace at all times, I believe it’s possible to attenuate it without full isolation. What if the personal media player was replaced with a means to control the tone and the volume of the environment as it were so that individual contributions remained but were adjustable by the listener?


The Auditory Environment Filter (AEF) is a device that, instead of replacing, amplifies and attenuates a soundspace, granting the listener control over the tone and volume of their environment without fully replacing as would be done with a personal media player. The device can be thought of as and operated like an equalizer. It is, more specifically, a resonant filter which allows a listener to attenuate the frequency range of the soundspace they occupy so that only a selected range of sound actually makes it to the ear canal. There are two modes of operation: high pass and low pass filter. The high pass filter filters upward from low frequencies so that at its maximum setting only the higher frequency elements pass through. Low pass mode operates in the opposite way and reduces the frequency range downward to that at its maximum setting only lower frequencies are passed. Both modes have a resonance control, which acts to accentuate the frequency dialed in on the device, and there is an overall volume control as well.


The device itself is portable, however just slightly too large to be kept in a pants pocket. There is a microphone element on one end and a headphone jack on the other, as well as control knobs on the top of it. It is designed to be actively used, not hidden in a pocket as other passive isolationism devices are. By pointing the AEF in any direction, the sound from that part of a soundspace can be manipulated to taste. Alternatively it may also lead to unexpected surprises: background sounds often become highlighted when frequencies that would overpower it naturally become masked, city traffic can become rhythmic music when the frequency of car tires over a pothole is discovered and the resonance of that frequency is increased. And what sounds are discovered when those same settings are kept when the device is pointed in a new direction? The act of isolation-by-headphones, as with a personal media player, now becomes an act of accute attention to sound environment as acted upon by all players of life, presented in a new way to explore instead of an old way ignore.


The AEF is designed for anyone with a sense of sonic curiosity and a slight technical know-how. The kit does require some basic soldering: the main, and most sensitive, components used to create the circuit are connected with a solderless breadboard, leaving the soldering for the connection of mechanical (and less sensitive) components such as potentiometers and switches. There is also some simple drilling of the case involved, though hole placement is not critical. The breadboard mounts inside the case with double-sided styrofoam tape, as is the clip which holds the 9v battery the entire circuit operates on. Instructions for the circuit can be followed by placing a template of the parts on the breadboard and simply pushing the components through the template into place.


STATUS


The design has gone through a bit of reversion. The initial prototype was built on a breadboard with the end goal of the finished product being made on a breadboard. Though at first it seemed fragile, after trying to transplant the circuit onto different types of protoboards, it has become clear that the initial idea of the breadboard is in fact the best option. Point to point breadboards will limit the audience to those with the diligence to actually undertake point to point soldering, which is in most cases quite bothersome. Even using a breadboard-like protoboard alters the layout of the circuit in ways that make it fairly cumbersome to put together. By keeping the circuit on a breadboard, the layout of the circuit is fairly symmetrical, and because the components are not being soldered it allows for a template to be used as a punch-through guide. Unfortunately this layout has not been fully reconfigured and the template remains unfinished. There are problems with the microphone preamp circuit and the filter circuit interacting due to the use of a virtual ground, but the problem is thought to be understood and the circuit is being worked out. Because of this I have not been able to bring on a “tester” to assemble the kit, as the instructions have not been finalized.

Another consideration has been that of the case. It was suggested that a nice wooden case could be laser cut, but that would do two things to the kit: raise the cost of materials and place focus of the project on the device as an object. My choice is to have a device that is slightly too big to hide or place in a pocket but not necessarily something to draw attention. The project is based on the idea of listening, and making the case ‘nicer’ would, I feel, lead the device to be more of an object than a tool.


Kit Contents:

Point-to-point. I love DIY circuits but absolutely hate point to point. I gave up on this angle of attack and knew immediately it would be a deterrent to many prospective users.

Breadboard layout in base of kit:

Original prototyping layouts

Thursday, November 10, 2011

Phase II Update: Retropticon (formerly PseudoCam)


Assembled Retropticon 0.2 prototype
Position Statement
The Retropticon functions as a commentary on the pervasiveness not only of external surveillance, but also of self-surveillance. The title of the kit references not only Jeremy Bentham’s Panopticon--a hypothetical architecture that allows occupants to be controlled through perpetual, perfect observation--but also Michel Foucault’s envisioned application of the Panopticon as a structure for broad social control through self-imposed surveillance in the service of disciplinary compliance.

In Foucault’s text, Discipline and Punish, he describes the panoptic social structure as being not merely imposed on individuals by external forces, but actually self-enforced; the strictures of disciplinary control are internalized by the individual out of a fear of being observed violating the social standards of behavior (and the punishment that may result). Thus, although social control is initialized by the imposition of a system upon the individual, it is ultimately constructed by and sustained within the individual.

The exercise of constructing a Retropticon refers to the significance of self-surveillance in both practice and material form. The general form--a camera--is an unambiguous reference to the technology of observation. Although it is a socially distributed design, a Retropticon is hand-made; the effort of the individual is required for construction, much as the effort of the individual ties them to disciplinary norms. The mirror contained in the Retropticon reflects only that which is visible in the aperture of the “lens”; in examining the Reropticon, the viewer reveals themselves to be the subject.

Because the Retropticon is visually identifiable as a camera-type object by its shape and surface charactaristics, once noticed, it is aggressive without being physically dangerous. By being inexpensive, small, and light, the Retropticon can be deployed easily and unobtrusively in locations that allow the element of surprise when discovered by others. It is through the mechanism of surprise that the Retropticon is able to function effectively; the process of noticing, recognizing, and investigating an installed Retropticon allows an uninitiated subject to confront the phenomena of pervasive, distributed surveillance, but also the self-imposition of that surveillance by the members of society.


User Test Notes
  • Industrial designers make very good assembly testers; they have natural experience with a variety of construction methods and materials. Angie and Moto were generous enough to contribute their time and effort for construction and time lapse photography (respectively).
  • The assembly of the Retropticon is, for the most part, "evil", but the product can be considered "cute".
  • Circles are much easier to cut with scissors than a hobby knife.
  • It may be feasible to have the components cut out with a laser cutter, which would be faster and neater than the manual method.
  • Standard white glue is not optimal because glued pieces must be held together for a long time (in some cases minutes) in order for the glue to set.
  • The tiny tabs on the button are a bit too tiny; it makes assembly difficult. In fact, most small details should probably be avoided because they do not offer enough pay-off for the amount of work required to add them.
  • The flash assembly needs to be simplified.
  • The lens assembly should probably be simplified; the lens ring components are difficult to combine neatly.
  • Apparently, when I am recorded via time-lapse photography, I look like a bobblehead.

Assembly Instructions


Video Documentation
time-lapse video of kit user test on 2011-11-10

Photo Documentation
cutting out components
almost done
finishing touches
finished Retropticon prototype
note the reflection visible in the Retropticon
top-right view
In the wild

Tuesday, April 6, 2010

JD PIRTLE | DIY PROJECT DOCUMENTATION: PHASE II



Here is the documentation of phase II of my DIY project. The project is split between two parts: an easy to build momentary switch that has numerous uses and folded trapezoidal (diamond) pleated forms made of various materials that are lit with LEDs.


This is the step-by-step process to making the switch, which in this example, is actually housed in the freezer bag the kit is shipped in. Alternatives to the freezer bag are floor tiles or cushions.


the kit



the process, which will be described in greater detail in phase III when it is uploaded to instructables.com



















These are three forms I constructed. After experimenting with different materials, paper vellum was the best for strength and flexibility, and did not require scoring (like most plastics). Paper vellum also retained the diamond structure best when stressed and diffused the light source better than regular paper. The forms are lit with various iterations of the switches.










This is a diamond pleat template I created for download. The red lines represent valley folds and the blue lines represent mountain folds. I will also put detailed instructions on instructables.com on how to fold and form this structure, with tips on how to modify it based on the number of intersections and folds.