Documents / Case file
This CIA archives copy, released in 2026, holds Project Blue Book Special Report No. 14 (Analysis of Reports of Unidentified Aerial Objects). The Air Technical Intelligence Center at Wright-Patterson Air Force Base issued it on 5 May 1955. The study reduced about 4,000 sighting reports from 1947 to 1952 to IBM punched cards, with 3,201 cases charted, and applied chi square tests to compare known and unknown sightings. It concludes that it is highly improbable the reports represent technological developments beyond present-day scientific knowledge.
From the source:Release of 2026-06-12 This is the USAF Project Blue Book with a CIA cover sheet stating the document is "Official Record Copy." With the exception of the handwritten note on the first page, the content of this document has been available on CIA's public website.
“Harder”1 page
I I This information consisted of: I ( 1) Time and date of observation in Greenwich Civil Time I (2) Latitude and longitude of the observer at the time of observation. I Figure 39 shows a celestial sphere on which Z represents the ob I server's zenith, ~ represents the sun, and N represents the north celestial pole. Using the date and time of the observation, the longitude and declina I tion (§) of the sun were obtained from an ephemeris of the sun and corrected for the equation of time. The difference between the longitudes of the sun I and the observer was taken, and called the hour angle (HA on Figure 39). I Then, using the declination of the sun (S), the latitude of the observer (lat), and the hour angle (HA), the angle (ZS)between the observer's zenith and the sun can be calculated from the law of cosines of spherical trigo nometry. Thus, cos ZS = cos (90 - lat) cos (90 - S) + sin (90 - lat) sin I (90 - S) cos (HA). I Since the angle ZS is measured from the observer's zenith, the angle of elevation of the sun above the horizon for daytime sightings was found by taking 90 - ZS. When the sun was below the horizon, the angle of depres I sion of the sun below the horizon was found by taking ZS - 90. I Having found the angle ZS, the bearing of the sun ( angle B} was ob tained from the formula: I sin (B) = sin (HA) sin(90-S) sin (ZS} I All of the above calculations were made with IBM equipment. Sines, I cosines, and their inverses were obtained from a deck of 9,000 IBM cards on which seven-place Peter 1 s tables of the sines, cosines, and tangents of angles had been punched for each 0.01 of a degree ·from O to 90 degrees. I Upon completion of these calculations, the cards representing OBJECT SIGHTINGS were sorted on the sign of the sine of the bearing angle. This separated the cards into two groups: ( 1) sightings which occurred between I noon and midnight, for which the sine of the bearing angle was positive; and I (2) sightings between midnight and noon, for which the sine of the bearing angle was negative. Then each of these groups was sorted into groups for intervals of 10° in angle of elevation of the sun from -90° to +90°. A count I was made of the number of cards in each group and from this a histogram was constructed (Figure 40}. The UNKNOWN OBJECT SIGHTINGS were I then sorted out, counted in the same manner, and a histogram was made (again see Figure 40). 55 __I
Case file, from the pursue collection. The PDF is mirrored here; the original link is above. 312 pages are in the text index: search them above, or from the library's search.